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Abstract

Exercise and physical activity is recommended treatment for a wide range of chronic pain conditions. In addition to several well-documented effects on physical and mental health, 8 to 12 weeks of exercise therapy can induce clinically relevant reductions in pain. However, exercise can also induce hypoalgesia after as little as 1 session, which is commonly referred to as exercise-induced hypoalgesia (EIH). In this review, we give a brief introduction to the methodology used in the assessment of EIH in humans followed by an overview of the findings from previous experimental studies investigating the pain response after acute and regular exercise in pain-free individuals and in individuals with different chronic pain conditions. Finally, we discuss potential mechanisms underlying the change in pain after exercise in pain-free individuals and in individuals with different chronic pain conditions, and how this may have implications for clinical exercise prescription as well as for future studies on EIH.

1. Introduction

Exercise is guideline recommended treatment for a range of chronic pain conditions.[49] Regular exercise and physical activity in general have well-documented positive effects on a range of physical and mental health domains including cardiovascular health, stress, mood, sleep, and sexual health.[146] In addition, clinically important reductions in pain are often observed after 8 to 12 weeks of exercise therapy[163]; however, as little as 1 session of exercise can induce hypoalgesia. This phenomenon is known as exercise-induced hypoalgesia (EIH).[92],[195] The first observation of EIH was published 40 years ago by Black et al..[14] During the past few decades, the number of studies investigating the effect of exercise on pain has increased dramatically, likely reflecting the increasing burden of pain as well as the recognized role of exercise in the treatment of pain.

This article will begin with a brief introduction to the methodology used in the assessment of the manifestations and mechanisms of EIH in humans. The second part of the article will present an overview of the findings from previous experimental studies investigating changes in pain perception after acute and regular exercise in pain-free individuals and in individuals with different chronic pain conditions. Possible mechanisms underlying the response to exercise in pain-free individuals and in individuals with different chronic pain conditions will also be discussed. In the last part of the article, implications for exercise prescription and future EIH studies will be addressed.

1.1. Assessment of exercise-induced hypoalgesia—methodological considerations

The effect of a single bout of exercise on pain perception in humans has primarily been investigated experimentally in laboratory settings. The methods used in these investigations are diverse, incorporating different study designs and methods of pain assessment. Most often, EIH has been investigated using a within-group pre-post design, whereby participants' pain is assessed at different exercising and nonexercising body sites before and during/after exercise.[130] Controlled studies using similar methodology but different designs (eg, crossover trials and parallel trials) have also been conducted.[80],[162],[195],[204] The results of these studies, especially those where participants were randomized to exercise or control, or where the order of exercise and control were randomized and counterbalanced for crossover trials, give a less biased estimate of the effect of a single bout of exercise on pain.

1.1.1. Pain threshold, intensity, and tolerance

Pain has been quantified in a variety of ways in studies of EIH, with quantitative sensory testing used most often. Quantitative sensory testing describes a series of tests that measure the perceptual responses to systematically applied and quantifiable sensory stimuli (usually pressure, thermal, or electrical).[23] These tests typically involve the assessment of a person's pain threshold or pain tolerance which are, respectively, the minimum intensity of a stimulus that is perceived as painful and the maximum intensity to a noxious stimulus that the participant is willing to tolerate.[116] Ratings of pain intensity and unpleasantness during exposure to various noxious stimuli might also be measured. As an example, pressure may be applied at an increasing intensity over the lower leg using an inflated cuff, with participants asked to rate the point at which this pressure becomes painful (threshold) and then endure it for as long as possible (tolerance) while rating its intensity or unpleasantness. Using this example, EIH could manifest as an increase in pain threshold, an increase in pain tolerance, and/or a reduction in ratings of pain intensity or unpleasantness. These measures are most commonly assessed in the immediate postexercise period (eg, 0–15 minutes), but some studies have measured pain 30 to 60 minutes after exercise cessation to investigate the persistence of EIH.[69],[103]

1.1.2. Pain modulatory mechanisms

Methods that assess an individual's ability to modulate pain have been increasingly used in recent studies of EIH. These include temporal summation, spatial summation, conditioned pain modulation, and offset analgesia. Of these paradigms, temporal summation and conditioned pain modulation have been used most often. Temporal summation refers to an increase in pain after repetitive stimulation at the same intensity[137] and is considered a behavioural correlate of wind-up—the frequency-dependent increase in C-fibre-evoked responses of dorsal horn neurons after repetitive stimulation at a constant intensity.[63] Temporal summation paradigms provide information mostly about facilitatory mechanisms underlying nociceptive processes.[23] By contrast, conditioned pain modulation provides an index of the strength of pain inhibition. Conditioned pain modulation (ie, “pain inhibits pain”) involves the application of 2 noxious stimuli over 2 different areas of the body, with the more pronounced noxious stimulus (conditioning stimulus) subsequently inhibiting the perception of the weaker noxious stimulus (test stimulus).[211],[212] Using these paradigms, EIH would manifest as a reduction in temporal summation and/or an increase in conditioned pain modulation, although evidence for the latter is limited.[2],[36],[122]

1.1.3. Nociceptive processing

Although not an assessment of pain per se, techniques that assess the function of the nociceptive pathways have sometimes been used to investigate EIH.[38],[80] These more complex methods, which include evoked potentials and neuroimaging, may provide greater insight into the mechanisms of EIH compared to more commonly used quantitative sensory tests. Evoked potentials are cortical responses recorded at the scalp using electroencephalography in response to brief and intense stimuli. Evoked potentials are described by their polarities (negative [N] and positive [P]), latencies, and amplitudes, and consist of early, late, and ultra-late components. When analysing pain-related evoked potentials, the peak-to-peak amplitude of the N2P2 is the component most related to nociception, whereby larger N2P2 amplitude is associated with more pain.[71] There is evidence that both the sensory-discriminative and affective aspects of pain are captured by this late component of the evoked potential, and studies have shown exercise to reduce the amplitude of this component.[72],[145] Neuroimaging is widely used in the study of pain, but to the best of our knowledge, only 2 studies have used neuroimaging to investigate acute EIH.[38],[165] In one study, brain responses to noxious thermal stimuli before and after rest and exercise were measured using functional magnetic resonance imaging in women with fibromyalgia and healthy pain-free controls. The results suggested that, in the women with fibromyalgia, exercise-stimulated brain regions involved in descending pain inhibition which, in turn, was associated with lower pain ratings to thermal stimuli.[38] In the second study, brain responses to noxious thermal stimuli before and after walking and running exercises were measured using functional magnetic resonance imaging in 20 athletes. The results suggested that running exercise reduced the pain-induced activation in the periaqueductal gray, a key area in descending pain inhibition which, in turn, was associated with lower pain unpleasantness ratings to thermal stimuli.[165] Taken together, these results provide evidence that a single bout of exercise can modulate pain-related areas of the nervous system.

In addition to the different study designs and techniques used to quantify pain in investigations of EIH, the exercise protocols have also varied considerably. Aerobic and isometric exercise have been studied most often,[130] whereas dynamic resistance exercise has not commonly been used. Within each mode of exercise, the prescription has varied too. For example, aerobic exercise has consisted of cycling, running, and stepping of various durations (30 seconds–30 minutes) and intensities (low to high).[69],[129],[195] The same is true of isometric exercise where upper-limb and lower-limb exercise of both short and long duration (<5 seconds—exhaustion) and varied intensity (10%–100% MVC) have been studied.[64],[195] Studies of dynamic resistance exercise have typically used whole-body training at moderate intensities.[17],[93] Interestingly, EIH is reproducible with each type of exercise, even when modest doses are used.[129],[162] This is described in more detail below.

2. Pain outcomes after acute and regular exercise in pain-free individuals

As illustrated in Table 1, a single session of exercise has repeatedly been observed to reduce pain sensitivity in pain-free individuals. Hypoalgesia after aerobic exercises (eg, bicycling or running), dynamic resistance exercises (eg, circuit training), and isometric exercises (eg, a wall squat) often produces an increase in pressure pain thresholds at exercising body areas of 15% to 20% compared with a quiet rest control condition.[192],[200] Increases in pain thresholds can also be observed at nonexercising body areas, although larger hypoalgesic responses are consistently observed in areas closer to the exercising muscles compared with nonexercising muscle areas. The observed EIH response is short-lasting, often with a duration lasting from 5 minutes after exercise[69] to 30 minutes after exercise[88] and may depend on the modality of the pain test stimulus.

Table 1. Summary of studies investigating acute exercise-induced hypoalgesia in pain-free individuals.

Exercise typeExercise formIntensityDuration

of partici pants

Pain test modalityPain outcomeLocal siteRemote siteFindingsYearAuthor
AerobicBicycling70% HRmax30 min10ChemicalPain intensityThigh—↑Pain intensity (hyperalgesia)1984Vecchiet et al.[205]
AerobicBicycling50%–70% HRmax20 min91ColdCPI—HandNo hypoalgesia1992Padawer and Levine[143]
Aerobic AerobicBicycling Bicycling70%–75% VO₂max VO₂max test6 min 8–12 min41 25Cold ColdCPT CPTol CPI— —Hand Arm↑CPT ↑CPTol ↓CPI2013 2018Pokhrel et al.[154] Chretien et al.[18]
Aerobic AerobicBicycling Bicycling50 W 100 W 150 W 200 W Increasing to 300WMax 8 min/step 15–30 min6 7Electrical ElectricalEPT EPT— —Tooth Tooth↑EPT ↑EPT1984 1985Pertovaara et al.[149] Kemppainen et al.[87]
AerobicBicyclingHR = 150/min20 min11ElectricalEPT—Tooth↑EPT1986Olausson et al.[140]
AerobicBicyclingIncreasing to 300 WUnknown6ElectricalEPT—Tooth↑EPT1986Kemppainen et al.[86]
AerobicBicyclingIncreasing to 200 WUnknown6ElectricalEPT—Tooth↑EPT1990Kemppainen et al.[88]
AerobicBicyclingIncreasing to 250 WFatigue10ElectricalEPT—Tooth Hand↑EPT tooth ↑EPT hand1991Droste et al.[30]
AerobicBicyclingIncreasing to VO₂maxUnknown17ElectricalEPT EPTol—Hand↑EPT ↑EPTol2005Drury et al.[33]
Aerobic Aerobic AerobicBicycling Bicycling Bicycling1 KP 60 W Increasing to 200 W5 min 10 min Unknown60 21 28Heat Heat HeatHPI TSPh HPI HPI— — —Foot Lower leg Hand Forearm Hand Hand↓HPI lower extremity ↓TSPh (lower extremity) ↓HPI ↓HPI2006 2014 2019George et al.[50] Ellingson et al.[36] St-Aubin et al.[175]
AerobicBicycling75% VO₂max30 min16PressurePPT PPI—Hand↑PPT ↓PPI1996Koltyn et al.[95]
Aerobic AerobicBicycling Bicycling75% VO₂max 1. 75% VO₂max 2. 50% VO₂max30 min 1. 10 min 1. 20 min 2. 10 min 2. 20 min20 80Pressure PressurePPI PPT— ThighHand Arm ShoulderNo hypoalgesia ↑PPTs After 75% VO₂max (10 and 20 min)2006 2014Monnier-Benoit and Groslambert[128] Vaegter et al.[195]
AerobicBicycling75% VO₂max15 min56PressurePPTThighShoulder↑PPTs2015Vaegter et al.[198]
AerobicBicycling75% VO₂max15 min56PressurePPTol TSPpLower legArm↑PPTol lower leg ↓TSPp lower leg2015Vaegter et al.[196]
AerobicBicycling
  1. 75% VO₂max 2. 50% VO₂max
20 min80PressurePPTol TSPpLower legArmNo hypoalgesia2015Vaegter et al.[196]
AerobicBicycling
  1. 70% VO₂max 2. 30% VO₂max
30 min10PressurePPTThighForearm↑PPT thigh After 70% VO₂max ↓PPT thigh and arm After 30% VO₂max (hyperalgesia)2016Micalos and Arendt-Nielsen[124]
AerobicBicyclingIncreasing to VO₂maxFatigue50PressurePPTKneeAnkle Arm Chest Head↓PPT Chest (hyperalgesia) ↓PPT Head (hyperalgesia)2016Kruger et al.[103]
AerobicBicyclingRPE = 14–1520 min40PressurePPTThighShin Hand↑PPT thigh ↑PPT shin ↑PPT hand2017Jones et al.[81]
AerobicBicyclingRPE = 175 min36PressurePPTThighHand↑PPT thigh ↑PPT hand2017Jones et al.[79]
AerobicBicyclingRPE = 1615 min34PressurePPTThighShoulder↑PPT thigh ↑PPT shoulder2018Vaegter et al.[193]
AerobicBicycling
  1. HIIT: 90%–100% of max workload 2. MICT: 65%–75% of HR
  1. 10 × 1 min 2. 30 min
28PressurePPTThighShin ShoulderNo hypoalgesia2018Hakansson et al.[58]
AerobicBicycling75% VO₂max15 min31PressurePPTThighBack Hand↑PPT thigh ↑PPT back ↑PPT hand2018Gajsar et al.[45]
Aerobic AerobicBicycling Bicycling50 W 75% VO₂max12 min 15 min20 30Pressure PressureTSPp PPTThigh ThighShoulder Back Hand↓TSPp trapezius ↑PPT thigh ↑PPT back2018 2019Malfliet et al.[118] Gomolka et al.[54]
AerobicBicyclingLactate threshold15 min34PressurePPTThighShoulder↑PPT thigh2019Vaegter et al.[192]
AerobicBicycling75%–88% HRmax20 min15Pressure ElectricalPPT EPIThighShoulder Thoracic spine Hand EsophagusNo hypoalgesia2017van Weerdenburg et al.[204]
AerobicBicycling
  1. 70% HR max 2. 86% HR max
  1. 24 min 2. 4 × 4 min
29Pressure HeatPPT HPT HPI—Hand↓HPI after interval condition2014Kodesh and Weissman-Fogel[91]
AerobicBicycling
  1. 70% HRR 2. 50%–55% HRR
20 min27Pressure HeatPPT PPI HPI TSPh—Forearm↑PPT after high intensity ↓HPI ↓TSPh2014Naugle et al.[132]
AerobicBicyclingIntensity = pain level 3/1015 min16Pressure HeatPPT HPTThighHand↑PPT ↑HPT2016Black et al.[11]
AerobicBicycling
  1. 75% VO₂max 2. 50% VO₂max
25 min43Pressure HeatPPT PPI HPI TSPhForearmForearm↑PPTs2016Naugle et al.[133]
AerobicBicycling60–70 W20 min40Pressure HeatPPT HPT TSPhAchilles—No hypoalgesia2016Stackhouse[176]
AerobicBicycling70% HRR15 min16Pressure HeatPPT HPT HPIThighShin Foot↑PPT thigh ↑PPT shin ↓HPI foot2019Jones et al.[78]
AerobicBicycling200 W20 min6ReflexNFRThigh—↑NFR1992Guieu et al.[55]
AerobicRepeated back movementsLifting 5 kg7 min18Pressure Heat ColdPPT HPT CPT TSPpBackHand↑PPT back ↑CPT hand2019Kuithan et al.[104]
AerobicRunningNear anaerobic threshold30 min27ColdCPT CPI—Hand↑CPT2011Wonders and Drury[210]
AerobicRunningUnknown30 min22HeatHPI—ForearmNo hypoalgesia1993Fuller and Robinson[44]
AerobicRunningSelf-selected40 min1PressurePPT PTT—Arm↑PPT ↑PTT1979Black et al.[14]
AerobicRunningSelf-selected1 mile15PressurePPT—Hand↑PPT hand1981Haier et al.[57]
AerobicRunningVO₂max testUnknown29PressurePPI—Arm↓PPI2001Oktedalen et al.[139]
AerobicRunning
  1. 75% VO₂max 2. 75% VO₂max 3. 50% VO₂max
  1. 10 min 2. 30 min 3. 10 min
12PressurePPI—Hand↓PPI after 30 min at 75% VO₂max2004Hoffman et al.[69]
AerobicRunning65%–75% of HRR7 min12PressurePPT—Forearm↑PPT2004Drury et al.[32]
AerobicRunningUnknown100 mile30PressurePPI—Hand↓PPI2007Hoffman et al.[67]
AerobicRunningVO₂max testUnknown62PressurePPTThighShoulder Hand↑PPT2015Stolzman et al.[179]
AerobicRunning110% Gas exchange threshold30 min26PressurePPTThighForearm↑PPT forearm ↑PPT thigh2019Peterson et al.[151]
AerobicRunning85% VO₂max44 min12Pressure Heat ColdPPI HPI CPI CPT—Hand Arm↓HPI ↓PPI1984Janal et al.[74]
AerobicRunning85% HRmax10 min63Heat ColdHPT CPI—Hand Forearm↓HPT (hyperalgesia) ↓CPI2001Sternberg et al.[178]
AerobicRunning75% VO₂max30 min14Heat ColdHPT CPT HPI CPI—HandNo hypoalgesia2005Ruble et al.[159]
AerobicStep63% VO₂max12 min60PressurePPI PTT—Hand↓PPI ↑PTT1994Gurevich et al.[56]
AerobicStep50% of maximum number of steps in 1 minute5 min30PressurePPI TSPp—Forearm↓PPI ↓TSPp2019Nasri-Heir et al.[129]
Aerobic AerobicWalking Walking6.5 km/h Fast walking10 min 40 min 6 min5 35Pressure PressurePPT PPTolThigh CalfShoulder ShoulderNo hypoalgesia ↑cPTT Calf2014 2019Lee[110] Hviid et al.[73]
AnaerobicWingate test“All-out”30 seconds50PressurePPT—Shoulder Jaw↓PPTs (hyperalgesia)2012Arroyo-Morales et al.[3]
Anaerobic AnaerobicBicycle Sprint Wingate test“All-out” “All-out”3 × 6 seconds 30 seconds12 50Pressure Pressure HeatPPT PPT HPT TSPh TSPcThigh ThighLower leg Hand↓PPTs (hyperalgesia) ↑PPT thigh ↑HPT hand ↓TSPh hand ↓TSPc hand2018 2018Klich et al.[89] Samuelly-Leichtag et al.[162]
Dynamic resistanceFull-body circuitModerate20 min17PressurePPT PPTolShin—↑PPTol1996Bartholomew et al.[5]
Dynamic resistanceFull-body circuit75% 1RM4 exercises 3 × 10 repetitions (45 min)13PressurePPT PPI—Hand↑PPT ↓PPI1998Koltyn and Arbogast[93]
Dynamic resistanceFull-body circuit75% 1RM4 exercises 3 × 10 repetitions (45 min)21PressurePPT PPI—Hand↑PPT ↓PPI2009Focht and Koltyn[42]
Dynamic resistance Dynamic resistanceUpper-body circuit Full-body circuitUnknown 60% 1RM10 min 40 min 3 exercises 12 repetitions5 24Pressure PressurePPT PPT PPTolShoulder —— HandNo hyperalgesia ↑PPTol2014 2017Lee[110] Baiamonte et al.[4]
Dynamic resistance Dynamic resistanceKettlebell swings Full-body circuit8–12 kg 60% 1RM8 × 20 seconds 9 exercises 12 repetitions32 10Pressure PressurePPT PTTLower back Buttock Hand— —↑PPTs ↑PTT hand2017 2018Keilman et al.[84] McKean et al.[119]
Dynamic resistanceHandgrip100% MVC30 contractions in 1 minute12PressurePPT—Forearm↑PPT2004Drury et al.[32]
Dynamic resistanceHandgripMediumMaximum of 40 contractions in 1 minute48HeatHPI—Hand↓HPI2008Weissman-Fogel et al.[207]
Dynamic ``ResistanceBack extensionsBodyweight3 × 15 repetitions20HeatHPI TSPh—Foot Lower leg Hand Forearm↓HPI (lower extremity)2006George et al.[50]
Dynamic resistanceCervical flexionsHead weight3 × 10 repetitions30Pressure HeatPPT HPI TSPh—Foot Hand↑PPT ↓HPI2011Bishop et al.[10]
Eccentric Eccentric EccentricWrist extension Elbow flexion Heel-raise30% MVC Max Bodyweight5 × 10 repetitions 10 × 6 repetitions 4 × 15 contractions13 10 40Pressure Pressure Electrical Pressure HeatPPT PPT EPT PPT HPT TSPhForearm Arm Achilles— — —↑PPT ↓PPT ↓EPT (hyperalgesia) PPT ↓TSPh2010 2015 2016Slater et al.[171] Lau et al.[108] Stackhouse et al.[176]
Isometric
  1. Knee extension 2. Elbow flexion
  1. 30% MVC 2. 60% MVC
  1. 90 seconds 1. 180 seconds 2. 90 seconds 2. 180 seconds
80PressurePPTThigh (knee extension) Arm (elbow flexion)Shoulder↑PPTs After low and high intensity exercises2014Vaegter et al.[195]
Isometric
  1. Knee extension 2. Elbow flexion
  1. 30% MVC 2. 60% MVC
3 min80PressurePPTol TSPpLower legArm↑PPTol (after both elbow and knee exercises) ↓TSPp arm and leg (after low and high intensity exercises)2015Vaegter et al.[196]
Isometric
  1. Knee extension 2. Elbow flexion
20% of MVCFatigue64PressurePPT PPI—Hand↑PPT after elbow flexion (women only)2016Lemley et al.[113]
Isometric
  1. Knee extension 2. Shoulder rotation
  1. 1 kg 2. 0.5 kg
Fatigue24PressurePPTThigh ShoulderShoulder `Thigh↑PPT thigh + shoulder both conditions2003Kosek and Lundberg[101]
IsometricBack extension—2 min29PressurePPTBackThigh Hand↑PPT thigh ↑PPT hand (women)2017Gajsar et al.[46]
IsometricElbow flexion
  1. Max contractions 2. 25% MVC 3. 25% MVC 4. 80% MVC
  1. 3 reps 2. Fatigue 3. 2 min 4. Fatigue
40PressurePPT PPI—Hand↑PPT and ↓PPI after max and after 25% MVC until fatigue2008Hoeger Bement et al.[64]
IsometricElbow flexion25% MVCFatigue20PressurePPT PPIHand—↑PPT ↓PPI2009Hoeger Bement et al.[65]
IsometricElbow flexion25% MVCFatigue26PressurePPT PPIHand—↑PPT ↓PPI (men only)2014Bement et al.[7]
IsometricElbow flexion
  1. Max contractions 2. 25% MVC 3. 25% MVC
  1. 3 reps 2. Fatigue 3. 2 min
24PressurePPT PPIHand—↑PPT ↓PPI (women only)2014Lemley et al.[111]
IsometricElbow flexion25% MVCFatigue39PressurePPIHand—↓PPI2014Lemley et al.[112]
IsometricElbow flexion40% MVC3 min26Pressure HeatPPT HPTArmHand↑PPTs2016Jones et al.[80]
IsometricArm abduction1 kgFatigue25PressurePPTShoulderShoulder↑PPTs2000Persson et al.[147]
IsometricHandgrip25% MVC2 min134ColdCPT CPI—Hand↑CPT hand2017Foxen-Craft and Dahlquist[43]
IsometricHandgrip25% MVC3 min34ElectricalEPI—Lower leg↓EPI2016Umeda et al.[188]
IsometricHandgrip
  1. 40% MVC 2. 25% MVC
  1. Fatigue 2. 3 min
88HeatTSPhHand—↓TSPh for both conditions2013Koltyn et al.[96]
IsometricHandgrip
  1. Maximal 2. 40%–50% MVC
2 min31PressurePPT PPIHand—↑PPT ↓PPI2001Koltyn et al.[97]
IsometricHandgrip40%–50% MVC2 min40PressurePPT PPIHandHand↑PPT both sites ↓PPI both sites2007Koltyn and Umeda[98]
Isometric IsometricHandgrip Handgrip33% MVC 1. 25% MVC 2. 25% MVC3 min 1. 1 minute 2. 3 min79 23Pressure PressurePPTol PPT PPIHand Hand— —↑PPTol No hypoalgesia2009 2009Alghamdi and Al-Sheikh[1] Umeda et al.[190]
IsometricHandgrip25% MVC
  1. 1 minute 2. 3 min 3. 5 min
50PressurePPT PPIHand—↑PPT and ↓PPI after all durations2010Umeda et al.[189]
IsometricHandgrip50% MVCFatigue50PressurePPTForearmForearm↑PPT2017Black et al.[12]
IsometricHandgrip50% MVCFatigue26PressurePPTForearmThigh↑PPT forearm ↑PPT thigh2019Peterson et al.[151]
IsometricHandgrip
  1. 1% MVC 2. 15% MVC 3. 25% MVC
Unknown2008Electrical ReflexEPI NFR—Lower leg↓EPI after 15% and 25% MVC2008Ring et al.[157]
IsometricHandgrip25% MVC3 min27Pressure HeatPPT PPI HPI TSPhForearmForearm↑PPT ↓HPI (women) ↓TSPh2014Naugle et al.[131]
IsometricHandgrip25% MVC3 min58Pressure HeatPPT PPI TSPhHand—↑PPT ↓PPI ↓TSPh2014Koltyn et al.[94]
IsometricHandgrip25% MVC3 min43Pressure HeatPPT PPI HPI TSPhForearmForearm↑PPT ↓TSPh2016Naugle et al.[133]
IsometricHandgrip25% MVC3 min58Pressure HeatPPT PPI TSPhHand—↑PPT ↓PPI ↓TSPh2017Brellenthin et al.[16]
IsometricHandgrip25% MVC3 min58Pressure HeatPPI HPIHand—↓PPI hand ↓HPI hand2018Crombie et al.[22]
IsometricHandgrip25% MVC3 min52Pressure HeatPPT HPI—Forearm↓PPT (hyperalgesia)2018Ohlman et al.[138]
IsometricKnee extension21% MVCFatigue14PressurePPTThigh—↑PPT1995Kosek and Ekholm[99]
IsometricKnee extension30% MVCFatigue134PressurePPT—Shoulder↑PPT2017Tour et al.[185]
IsometricKnee extension0.75 kg12 min15Pressure ElectricalPPT EPIThighShoulder Thoracic spine Hand EsophagusNo hypoalgesia2017van Weerdenburg et al.[204]
IsometricKnee extension30% MVC3 min20Pressure HeatPPT PPTol HPT—Lower leg↑PPTol2017Vaegter et al.[199]
IsometricKnee extension20%–25% MVC5 minPressure HeatPPT PPI HPIShinNeck↑PPT shin2018Harris et al.[61]
IsometricPinch grip25% MVC15 seconds38HeatHPIHandHandNo hypoalgesia2013Paris et al.[144]
IsometricPinch grip
  1. 5% MVC 2. 25% MVC 3. 50% MVC
15 seconds42HeatHPIHandHand↓HPI with larger effects for higher intensity2014Misra et al.[127]
IsometricTeeth-clenching—Fatigue33PressurePPTJawForearm↑PPT jaw2019Lanefelt et al.[106]
IsometricTrunk flexion—Fatigue70PressurePPTAbdomenNailbed↑PPT Abdomen2019Deering et al.[27]
IsometricWall squat—3 min35PressurePPTThighShoulder↑PPT thigh ↑PPT shoulder2019Vaegter et al.[200]

2.1. Exercise intensity and duration

The hypoalgesic responses seem to be similar between exercise types,[133],[195] although EIH differences have been observed,[32] but exercise intensity and duration quite consistently affect the EIH response. Exercise intensity affects the EIH response after aerobic exercise.[69],[124],[132],[195] For example, in 80 pain-free individuals, it was observed that a moderate-to-high intensity bicycling exercise produced significantly larger EIH responses at the exercising quadriceps muscle, as well as at the nonexercising biceps and trapezius muscles, compared with a low-intensity bicycling exercise.[195] Findings on the influence of aerobic exercise duration are more equivocal, with one study observing a dose-response with larger effects after bicycling for 30 minutes compared with 10 minutes,[69] and one study observing no difference between bicycling for 10 minutes compared with 20 minutes.[195] Moreover, the fact that very short-duration aerobic exercise can elicit EIH[129],[162] implies that intensity, or the combination of intensity and duration, may be more important for determining the size of EIH after aerobic exercise than either variable alone.

Exercise intensity and duration may also affect the EIH response after isometric exercises,[64],[127],[157] although the results are more inconsistent. In 40 individuals, pressure pain thresholds at the hand were increased and pressure pain intensity was decreased after low-intensity (25% of maximal voluntary contraction [MVC]) isometric elbow flexion until exhaustion. However, no hypoalgesia was observed when the contraction was held for only 2 minutes.[64] By contrast, hypoalgesia was found after 90 and 180 seconds isometric knee extensions and elbow flexion exercises at 30% MVC and 60%, respectively, in 80 healthy individuals; however, the hypoalgesic responses were not different in magnitude between low-intensity and high-intensity contractions nor between shorter or longer durations.[195] The fact that very low doses of isometric exercise (eg, three maximal contractions of 5-second duration, totaling 15 seconds of exercise) can produce EIH[64] lends further support to the lack of clear dose-response, which is further evidenced by a study of 50 individuals where elevations in pain threshold were not different between isometric handgrip exercises at 25% MVC for 1, 3, or 5 minutes.[189]

2.2. Effects on pain modulatory mechanisms

As described, robust increases in pressure pain thresholds are observed after exercise, but exercise can also affect spinal and supraspinal mechanisms of pain. Temporal summation of pressure and heat pain was reduced after submaximal isometric exercises at 25% to 40% of MVC for 3 minutes,[94],[96],[131],[196] and 20 minutes of aerobic exercise at 55% to 70% of heart rate reserve reduced temporal summation of heat pain[132]; however, temporal summation of pressure pain was not affected by 15 to 20 minutes of aerobic exercise at 50% to 75% of VO2max.[196] However, not all studies have shown exercise to have positive effects on pain mechanisms. For example, Alsouhibani et al. observed a decrease in the CPM response after exercise.[2] By contrast, other studies have found exercise to have no effect on CPM[122] or offset analgesia,[61] suggesting that exercise can, but does not always, influence spinal and supraspinal mechanisms of pain. Exercise can also influence the ability to cope with pain. The perceived pain intensity of a suprathreshold stimulus is consistently reduced by aerobic, isometric, and dynamic resistance exercises,[42],[64],[98] and acute exercise can reduce ratings of pain unpleasantness even in the absence of a change in pain intensity.[80] In addition, low-intensity nonpainful aerobic and isometric exercises also increase the tolerance to a painful stimulus. A 20% increase in pain tolerance was observed by Vaegter et al.[199] after a 3-minute submaximal isometric knee extension exercise, and after a 6-minute walking exercise[73] compared with rest in 35 pain-free individuals.

2.3. Factors influencing exercise-induced hypoalgesia

Exercise that produces acute hypoalgesia is often perceived as moderately painful with peak pain intensity ratings around 5 or 6 on a 0 to 10 numerical rating scale,[193],[200] and painful exercises seem to have larger hypoalgesic effects than nonpainful exercises, at least in pain-free individuals,[36] but perhaps not in individuals with chronic pain.[20],[173]

Treatment expectations are a well-recognized factor known to modulate treatment outcomes and the information about the effect of exercise given to individuals before exercise influences the magnitude of the EIH response. First, a randomized controlled trial by Jones et al.[81] observed that the hypoalgesic effect after bicycling was slightly increased if positive information about EIH was given before the exercise compared to when no EIH information was given before exercise. Second, a randomized controlled trial by Vaegter et al. comparing positive vs negative pre-exercise information observed a 22% increase in pain thresholds in the positive information group, whereas the negative information group had a 4% decrease (hyperalgesia) in pain threshold at the exercising muscle (Vaegter et al., in review). Both studies observed a positive correlation between expectations and hypoalgesia after exercise.

Despite robust hypoalgesia after exercise on a group level, the response to exercise is not identical across individuals and across days. Several studies have investigated the stability of the EIH response in pain-free individuals across different days using a number of aerobic[54],[73],[192],[193] and isometric[200] exercise protocols. Across protocols, some individuals consistently show hypoalgesia after exercise, some individuals consistently showed hyperalgesia after exercise, and some individuals had a change in their response from hypoalgesic to hyperalgesic or vice versa between days. Interestingly, the majority of individuals showed hypoalgesia at some point.

2.4. Regular exercise and pain

The effect of regular exercise and physical activity on pain sensitivity has been investigated, albeit less than the effect of a single session of exercise. In pain-free individuals, there have been relatively few studies investigating whether those who are more physically active experience greater EIH. The results of these studies show that EIH is usually similar between inactive and active pain-free individuals irrespective of the type of exercise they regularly perform (ie, aerobic or strength training) and the methods used to assess physical activity (ie, self-report or objectively measured using accelerometry).[12],[188],[198] However, Ellingson et al.[35] observed lower pain intensity ratings and lower pain unpleasantness ratings to suprathreshold heat pain stimulations in pain-free women who were physically active as defined by the current public health recommendations compared with women who were less physically active than recommended. There is also some evidence that individuals who are more physically fit experience greater EIH.[138],[166]

Regarding the effect of a longer period of exercise training in pain-free individuals, Hakansson et al.[58] observed changes in PPT in the legs after 6 weeks of moderate bicycling exercises (3 times/week) but not after high-intensity interval exercise. In addition, Jones et al.[76] observed increases in pressure pain tolerance but not pain threshold after bicycling 30 minutes at 75% of VO₂ max 3 times/week for 6 weeks compared with a control condition. These findings suggest that regular exercise in pain-free individuals specifically influences the ability to cope with pain (ie, pain perception above the pain threshold) rather than the level at which pain is first perceived (pain threshold). Similar observations have been found in athletes compared with less active individuals. A systematic review with meta-analysis by Tesarz et al.[182] showed consistently higher pain tolerance across different pain modalities (ie, pressure, heat, cold, electrical, and ischemic) in athletes; however, for pain thresholds, the conclusion was less consistent.

In addition to the effect on pain tolerance, regular exercise may also affect the ability to inhibit pain as assessed by the CPM paradigm. Naugle et al. observed that pain-free individuals reporting more regular physical activity also had a larger CPM response compared with individuals reporting less regular physical activity.[134],[135] Although previous investigations on CPM in athletes have been equivocal because increased CPM[52] as well as decreased CPM[181] has been observed, the positive effect of regular exercise on CPM may be a potential mechanism underlying the preventive effect of exercise on pain because better CPM capacity has been associated with a reduced risk of chronic pain.[211] The preventive effect of regular exercise is supported by a recent systematic review with meta-analysis concluding that regular exercise performed 2 to 3 times/week reduces the risk of low back pain by 33%.[169] This is true even in those who are at an increased risk of developing chronic pain.[115]

3. Pain outcomes after acute and regular exercise in individuals with chronic pain

In individuals with different chronic pain conditions, the response to a single session of exercise is less consistent as hypoalgesia, reduced hypoalgesia, or even hyperalgesia (ie, increased sensitivity to pain) has been observed. As illustrated in Table 2, hypoalgesia after exercise has, eg, been observed in individuals with chronic musculoskeletal pain,[123],[197] shoulder pain,[105] patella femoral pain,[180] knee osteoarthritis,[59],[194] menstrual pain,[186] and rheumatoid arthritis.[117] However, reduced EIH responses or even hyperalgesia after exercise has often been demonstrated in individuals with whiplash-associated disorder,[203] ME/CFS,[123],[202] fibromyalgia pain,[100],[107],[177] painful diabetic neuropathy,[90] chronic musculoskeletal pain,[19] and also in a delayed-onset muscular soreness pain model.[25] Hyperalgesia after exercise is often observed in individuals with more widespread chronic pain conditions. This was first observed by Kosek et al.[100] in 5 individuals with fibromyalgia who showed a decrease in pain thresholds during and after an isometric knee extension exercise. The observation of hypoalgesia after exercise in some groups with chronic pain conditions and the observation of hyperalgesia after exercise in other groups with chronic pain may be influenced by whether the exercise is performed using a painful or nonpainful body area. Lannersten and Kosek[107] observed hypoalgesia after a 5-minute submaximal (25% of MVC) isometric exercise in individuals with shoulder myalgia when the exercise was performed by a nonpainful leg muscle but when the exercise was performed by the painful shoulder muscle, no hypoalgesic response was observed. Similarly, Burrows et al.[17] observed increases in pressure pain threshold after upper-body but not lower-body resistance exercise in people with knee osteoarthritis. These findings suggest that hypoalgesia can be induced by exercising nonpainful muscles in subjects with chronic pain,[191] which may have important implications for exercise prescription in the clinical setting.

Table 2. Summary of studies investigating acute exercise-induced hypoalgesia in individuals with different pain conditions.

Exercise typeExercise formIntensityDuration

of participants

Pain conditionPain test modalityPain outcomeLocal siteRemote siteFindingsYearAuthor
AerobicBicyclingIncreasing to 75% HRmaxUnknown20ME/CFSClinicalPain intensity——No hypoalgesia2017Oosterwijck et al.[141]
AerobicBicyclingVO₂max test8–12 min25Chronic painColdCPI—ArmNo hypoalgesia2018Chretien et al.[18]
AerobicBicycling1 KPa5 min12Chronic Low back painHeatHPI TSPh—Forearm Lower leg↓ TSPh forearm2009Bialosky et al.[9]
AerobicBicycling80% VO₂max30 min23DOMS MODELPressurePPT—ArmNo hypoalgesia2002Dannecker et al.[25]
AerobicBicycling70% VO₂max20 min8Chronic low back painPressurePPI—Hand↓PPI2005Hoffman et al.[68]
AerobicBicyclingIncreasing to 130 W37 min26Chronic fatigue syndromePressurePPTLower legHand Lower back Shoulder↓PPTs (hyperalgesia)2010Meeus et al.[123]
AerobicBicyclingIncreasing to 130 W37 min21Chronic low back painPressurePPTLower legHand Lower back Shoulder↑PPTs2010Meeus et al.[123]
AerobicBicycling
  1. 75% HRmax 2. Self-paced
Unknown22hronic fatigue syndromePressurePPTLower legHand Lower back↑PPT lower back (after self-paced) ↓PPTs calf/hand (after self-paced) (hyperalgesia) ↓PPTs (after 75% HRmax) (hyperalgesia)2010Van Oosterwijck et al.[202]
AerobicBicycling
  1. Increasing to 75% HRmax 2. Self-paced
  1. Unknown 2. Individual
20ME/CFSPressurePPTLower legHand Lower backNo hypoalgesia/some hyperalgesia2010Van Oosterwijck et al.[202]
AerobicBicycling
  1. 62% HRmax 2. Self-paced
20 min21FibromyalgiaPressurePPT PPI PPTol—Hand↑PPT and PPTol (both conditions) ↓PPI (both conditions)2011Newcomb et al.[136]
AerobicBicycling
  1. 75% HRmax 2. Self-paced
Unknown22WADPressurePPTLower legHand Lower back↑PPT lower back (after self-paced) ↓PPTs calf/hand (after self-paced) (hyperalgesia) ↓PPTs (after 75% HRmax) (hyperalgesia)2012Van Oosterwijck et al.[203]
AerobicBicyclingIncreasing to 75% HRmaxMaximum of 15 min19Fibromyalgia with chronic fatiguePressureTSPp—Shoulder HandNo hypoalgesia2015Meeus et al.[122]
AerobicBicyclingIncreasing to 75% HRmaxMaximum of 15 min16RAPressureTSPp—Shoulder HandNo hypoalgesia2015Meeus et al.[122]
AerobicBicycling75% of VO₂max15 min61Chronic MSK painPressurePPT PTTol TSPpThighArm Shoulder Lower leg↑PPTs ↑PPTol ↑TSPp (in high pain sensitive patients)2016Vaegter et al.[197]
Aerobic AerobicBicycling Bicycling
  1. 70% HRmax 2. 75%–85% HRmax 75% of VO₂max
  1. Continuous 20 min 2. Interval 5 × 4 min 15 min
15 14Chronic fatigue syndrome Knee OAPressure PressurePPT PTTolThigh ThighShoulder Hand Arm Shoulder Lower leg↑PPT thigh after interval ↑PPTs2016 2017Sandler et al.[164] Vaegter et al.[194]
AerobicBicycling75% of HRmax30 min21WADPressurePPT—Neck ShinNo hypoalgesia2017Smith et al.[172]
Aerobic AerobicBicycling BicyclingIncreasing to 75% HRmax 50 WUnknown 12 min40 20Knee OA Chronic fatigue syndromePressure PressurePPT TSPpThigh Knee ThighForearm Shoulder↑PPTs (if normal CPM) ↓PPTs (if abnormal CPM) No hyperalgesia2017 2018Fingleton et al.[40] Malfliet et al.[118]
AerobicBicycling70% VO₂max30 min27Gulf veteransPressure HeatPPT HPI—Hand↑HPI (if pain) (hyperalgesia)2010Cook et al.[19]
AerobicRunningBruce testFatigue10FibromyalgiaHeatTSPh—Hands↑TSPh (hyperalgesia)2001Vierck et al.[206]
AerobicRunning5 km/hour3 × 5min5Chronic fatigue syndromePressurePPT—Hands↓PPTs (hyperalgesia)2004Whiteside et al.[208]
Aerobic AerobicWalking WalkingSelf-selected 1. Continuous 1.3 m/second 2. Interval 1.3 m/second4 min 1. 45 min 2. 3 × 15 min20 27Plantar fasciopathy Knee OAClinical pain PPT Clinical painPain intensity during test PPT Pain intensityHeel —— —No hypoalgesia ↑Pain intensity continuous walking (hyperalgesia)2018 2017Riel et al.[156] Farrokhi et al.[39]
AerobicStepping50% of maximum number of steps in 1 minute5 min30TMDPressurePPI TSPp—Forearm↓TSPp2019Nasri-Heir et al.[129]
Dynamic resistanceLeg exercises
  1. 60% 1RM 2. Self-selected
2 exercises 6 × 10 repetitions32FibromyalgiaClinicalPain intensity——Hyperalgesia2018da Cunha Ribeiro et al.[24]
Dynamic resistance Dynamic resistanceKnee extensions Knee extensions1RM 8RM6 × 10 repetitions 1 exercise 3 × 8 repetitions20 21Knee OA Patellar tendinopathyClinical Clinical pressurePain intensity DOMS Pain intensity during SLS PPTKnee Knee shin— ForearmNo change in pain intensity More DOMS than controls ↓Pain intensity ↑PPT shin2013 2019Germanou et al.[51] Holden et al.[70]
Dynamic resistanceArm-raisesFast6 min24Knee OAPressurePPTShoulderThigh↑PPT shoulder2020Hansen et al.[59]
Dynamic resistance
  1. Hip abductions 2. Knee extensions
Load = 12RM3 exercises 12 repetitions30PFPPressurePPT PTTol TSPpKnee Lower legElbow (PPT)↑PPT (lower leg) ↑PPTol (after knee exercises)2019Straszek et al.[180]
Dynamic resistanceLower-body circuit60% 1RM3 exercises 10 repetitions11Knee OAPressurePPT PPTolThigh Knee ShinShoulder Arm Forearm HandNo hypoalgesia2014Burrows et al.[17]
Dynamic ResistanceUpper-body circuit60% 1RM3 exercises 10 repetitions11Knee OAPressurePPT PPTolShoulder Arm Forearm HandThigh Knee Shin↑PPTs (across sites)2014Burrows et al.[17]
Dynamic resistance Dynamic resistanceBack extensions Repeated back movementsBodyweight Lifting 5 kg3 × 15 repetitions 7 min12 18Chronic low back pain Chronic low back painHeat Pressure Heat ColdHPI TSPh PPT HPT CPT TSPp— BackForearm Lower Leg Hand↓TSPb forearm ↑CPT hand2009 2019Bialosky et al.[9] Kuithan et al.[104]
Dynamic resistanceCervical flexionHead weight10 × 10 seconds13Chronic neck painClinical pain PressurePain intensity PPTNeckShoulder↓Pain intensity ↑PPTs2018Galindez-Ibarbengoetxea et al.[47]
IsometricElbow flexion
  1. 25% MVC 2. 25% MVC 3. 100% MVC
  1. 2 min 2. Fatigue 3. 3 reps
15FibromyalgiaPressurePPT PPI—HandNo hypoalgesia2011Hoeger Bement et al.[66]
IsometricHandgrip25% MVC3 min18Diabetic neuropathyHeatHPI TSPhHand Forearm—↓HPI and TSPh (if no pain) No changes (if pain)2014Knauf and Koltyn[90]
IsometricHandgrip25% MVC3 min64Menstrual painPressurePPTForearm Shin↑PPTs2018Travers et al.[186]
IsometricHandgrip30% MVC90 seconds12FibromyalgiaPressure HeatPPT HPIForearmForearm↓PPTs ↑HPI (hyperalgesia)2005Staud et al.[177]
IsometricKnee extension20%–25% MVCFatigue14FibromyalgiaPressurePPTThigh—↓PPT (hyperalgesia)1996Kosek et al.[100]
IsometricKnee extension10%–15% MVCFatigue17FibromyalgiaPressurePPTThighShoulder↑PPT (shoulder)2007Kadetoff and Kosek[82]
IsometricKnee extension50% MVCFatigue66Knee OAPressurePPTThighShoulder↑PPTs2013Kosek et al.[102]
IsometricKnee extension50% MVCFatigue47Hip OAPressurePPTThighShoulder↑PPTs2013Kosek et al.[102]
IsometricKnee extension30% MVC90 seconds61Chronic MSK painPressurePPT PTTol TSPpThighArm Shoulder Lower leg↑PPTs ↑PPTol2016Vaegter et al.[197]
IsometricKnee extension30% MVC90 seconds14Knee OAPressurePPT PTTolThighArm Shoulder Lower leg↑PPTs2017Vaegter et al.[194]
IsometricKnee extension10% MVC5 min40Knee OAPressurePPTThigh KneeForearm↑PPTs (if normal CPM) ↓PPTs (if abnormal CPM)2017Fingleton et al.[40]
Isometric IsometricKnee extension Knee extension30% MVC 30% MVCFatigue 5 min130 46Fibromyalgia RAPressure PressurePPT PPT— ThighShoulder Shoulder↑PPT ↑PPTs2017 2018Tour et al.[185] Lofgren et al.[117]
IsometricKnee extension70% MVC5 × 45 seconds21Patellar tendinopathyPressure clinicalPain intensity during SLS PPTKnee ShinForearm↓Pain intensity ↑PPT shin2019Holden et al.[70]
Isometric
  1. Knee extension 2. Shoulder rotation
20%–25% MVCFatigue20Shoulder painPressurePPTThigh ShoulderShoulder Thigh↑PPTs (during knee extension)2010Lannersten and Kosek[107]
Isometric
  1. Knee extension 2. Shoulder rotation
20%–25% MVCFatigue20FibromyalgiaPressurePPTThigh ShoulderShoulder ThighNo hypoalgesia2010Lannersten and Kosek[107]
IsometricShoulder abduction1 kgFatigue19Chronic shoulder painPressurePPTShoulder—↑PPT2003Persson et al.[148]
IsometricShoulder abductionWeight of armsFatigue22FibromyalgiaPressurePPTShoulderShin↓PPT shin (hyperalgesia)2012Ge et al.[48]
IsometricShoulder abduction20%–25% MVC5 min24Shoulder painPressurePPTShoulderThigh Shin↑PPTs2016Kuppens et al.[105]
IsometricSquat70% MVC1 exercise 5 × 45 sec repetitions6Patella tendinopathyClinicalPain intensity during SLS——↓Pain intensity2015Rio et al.[158]
IsometricTooth clenching—Fatigue20TMDPressurePPTJawForearm↑PPT jaw2019Lanefelt et al.[106]
IsometricWall squatBodyweight3 min21WADPressurePPT—Neck Shin↑PPTs2017Smith et al.[172]

Individuals with facilitated central pain mechanisms, which are commonly observed in several chronic musculoskeletal pain conditions,[121] often report reduced hypoalgesia after exercise. Vaegter et al.[197] observed reduced EIH after submaximal isometric exercise and after bicycling exercise in chronic pain patients with high widespread pain sensitivity compared with patients with low pain sensitivity. In addition, in high pain-sensitive patients, an increase in temporal summation of pain was observed after aerobic exercise[177],[197] possibly mimicking the pain flare-up after exercise reported in clinical practice by some individuals with widespread chronic pain.[24] Also, Fingleton et al.[40] observed reduced pressure pain thresholds (hyperalgesia) after both aerobic and isometric exercises in individuals with knee osteoarthritis who demonstrated an impaired CPM response. By contrast, pain thresholds increased in knee osteoarthritis individuals with a normal CPM response suggesting that patients with impaired CPM, which is also a common finding in individuals with chronic pain,[114],[121] may have less acute hypoalgesic effect from exercise.

Another possible explanation for the lack of hypoalgesia after exercise often observed in individuals with chronic pain is that the exercise dose–response relationship is different in individuals with chronic pain compared with pain-free subjects. Newcomb et al.[136] observed a larger EIH response in individuals with fibromyalgia after 20 minutes of aerobic exercise at a preferred intensity (45% of maximal heart rate) compared with a prescribed and higher-intensity aerobic exercise (60%–75% of maximal heart rate). Similarly, Coombes et al.[20] showed that isometric exercise above but not below an individual's pain threshold increased pain responses to exercise in people with lateral epicondylalgia. These results could indicate that lower-intensity exercise creates less input to facilitated central pain mechanisms resulting in a net balance of pain inhibition and a reduction in the pain sensitivity after exercise. This may be different for chronic exercise, however, where a small benefit of painful over nonpainful exercise has been observed, albeit for clinical pain at baseline as opposed to experimental pain in the immediate post-exercise period.[173] Other possible explanations for reduced EIH include use of opioids and negative expectations about the effect of exercise. Interactions between EIH mechanisms and the use of analgesics may affect the response to exercise. Individuals treated with opioids report less CPM,[155] and reduced effects of opioids have been reported in animals after long-term exercise.[174] As observed in pain-free individuals, negative expectations are associated with the hypoalgesic response after exercise. Interestingly, most patients with chronic pain referred to multidisciplinary pain treatment do not expect exercises to cause less pain; on the contrary, the majority expects more pain after exercise (Fig. 1).

Figure 1.

Figure 1. Expectations about the effects of low-intensity exercise, moderate-intensity exercise, and vigorous-intensity exercise on pain reported by patients (n = 500) referred for interdisciplinary pain treatment at a University Hospital Pain Center in Denmark (unpublished data from the clinical pain registry, PainData).

3.2. Regular exercise and pain

Regular exercise is guideline recommended treatment for a wide range of chronic pain conditions.[49],[146] Regular exercise is safe and generally well accepted by individuals with mild to moderate chronic pain; however, the effects on pain and pain sensitivity are somewhat conflicting, and the level of evidence for a positive effect is generally low.[49] Clinically relevant reductions in pain and pain sensitivity are often observed after 8 to 12 weeks of exercise therapy in individuals with knee or hip osteoarthritis,[170] but randomized controlled trials often observe smaller effects with pain reductions of less than 10 on a 100-point numerical rating scale[62] or even no change in pain after exercise therapy compared with passive sham therapy.[8]

To the best of our knowledge, only 2 studies have investigated whether habitual physical activity levels predict pain responses to acute exercise in individuals with chronic pain. Coriolano et al.[21] found that people with knee osteoarthritis who self-reported more physical activity experienced less exacerbation in pain after completing performance-based tests and a physiological test (submaximal arm ergometer test). In people with fibromyalgia, Umeda et al.[187] showed that participants who were more physically active reported a smaller increase in ratings of muscle pain intensity during isometric handgrip exercise. Taken together, these results suggest that being more physically active is associated with reduced pain responses to acute exercise in individuals with chronic pain. These results are consistent with cross-sectional data showing negative associations between fitness and pain (ie, more fitness, less pain) in people with fibromyalgia[77] and knee osteoarthritis (Jones et al., in review) as well as longitudinal data showing benefit of longer periods of regular exercise training on reducing pain in individuals with chronic pain.[49]

4. Underlying mechanisms of exercise-induced hypoalgesia in humans

There are numerous biological and cognitive factors that contribute to pain, so changes in any one or more of these by acute exercise could account for EIH. It is not clear, however, what these mechanisms are or whether the mechanisms are similar or distinct between healthy individuals and individuals with chronic pain. The contrasting magnitude of EIH between pain-free individuals and individuals with chronic pain[130] suggests that the mechanisms of EIH are disrupted in individuals with chronic pain. That is, some aspect of chronic pain (eg, inflammation, sensitization, and fear of movement) interferes with the normal hypoalgesic effect of acute exercise. These potential mechanisms will be described in more detail hereafter.

4.1. Opioid and cannabinoid systems

The most commonly proposed mechanism of EIH is enhanced descending inhibition by activation of the opioid and cannabinoid systems. The contraction of skeletal muscle increases the discharge of mechanosensitive afferents (ie, A-delta and C-fibres) which, in turn, activates central descending opioid pain pathways.[29],[184] Exercise also increases the release of endogenous cannabinoids. These opioid and cannabinoid pathways have receptors throughout the peripheral and central nervous systems that can produce analgesia when stimulated.[29],[184]

Human studies investigating the role of opioids and cannabinoids in EIH have yielded equivocal findings. For example, opioid antagonists such as naloxone and naltrexone have been shown to increase, decrease, or have no effect on EIH.[30],[31],[74],[94],[140] Moreover, correlations between EIH and exercise-induced changes in plasma concentrations of beta-endorphins and endocannabinoids are not always observed.[94],[139],[165] A limitation of these human investigations is that they are more constrained than rodent studies in their ability to investigate whether opioids and cannabinoids are acting through peripheral and/or central actions to influence pain after exercise; however, there is some evidence that blocking blood flow to a limb during exercise attenuates EIH in pain-free individuals, suggesting that peripheral factors are important.[79]

4.2. Stress-induced hypoalgesia

Exercise-induced hypoalgesia might also be a form of stress-induced analgesia, related to the release of various stress hormones during exercise. However, evidence to support this in humans is mixed. For example, EIH is related to increases in growth hormone during exercise,[149] but another study found that the suppression of exercise-induced growth hormone release by cyproheptadine had no effect on EIH.[86] Dexamethasone, a steroid medication, has been shown to attenuate EIH by reducing secretion of adrenocorticotropin[88]; however, other studies have found no effect of dexamethasone on pain in healthy individuals.[209] A small pilot study of 7 healthy individuals showed that exercise-induced changes in neuropeptide Y, allopregnanolone, pregnenolone, and dehydroepiandrosterone were related to EIH.[167] However, because concentrations of these substances were only measured in the plasma, it is not clear whether they were acting through peripheral or central mechanisms to influence pain. Moreover, because this was only a small pilot study, more studies are needed to confirm the findings.

4.3. Cardiovascular systems

Exercise-induced changes in the cardiovascular system have also been proposed as a mechanism of EIH. That is, elevations in blood pressure by exercise are thought to attenuate pain through baroreceptor-related mechanisms (ie, the activation of arterial baroreceptors by exercise subsequently activates pain-related brain areas involved in pain modulation). Although it is true that people with high blood pressure are less sensitive to pain (ie, hypertension-associated hypoalgesia),[161] there is currently little evidence that acute changes in blood pressure by exercise are related to EIH.[28],[157],[189],[190] Moreover, acute increases in blood pressure by exercise could not account for the persistence of EIH after exercise (eg, 15 minutes after exercise cessation[210] because blood pressure would have presumably returned to baseline, or indeed be lower, by this time).

4.4. Central pain modulatory systems

The influence of exercise on reducing the sensitivity of the central nervous system has also been explored as a mechanism of EIH. These studies show that acute exercise can reduce temporal summation[96],[131],[196],[206] and increase thresholds to elicit the nociceptive withdrawal reflex,[55] although there is some evidence contrary to the latter observation.[125] These results imply that exercise can reduce pain through reductions in central nervous system sensitivity at spinal and supraspinal levels, but exactly where in the nociceptive pathway these changes occur is not known. Improved efficacy of descending inhibitory pathways by exercise has been studied as a mechanism of EIH as well, but there is little direct evidence to support this. For example, Alsouhibani et al.[2] observed a decrease in the CPM response after exercise, Meeus et al. found no effect of aerobic exercise on CPM in healthy individuals,[122] and Ellingson et al.[36] showed that EIH was comparable for nonpainful and painful exercise, although the latter should have evoked a larger “pain inhibits pain” effect. A few studies have found small positive correlations between conditioned pain modulation and EIH[13],[112],[198] suggesting that the 2 may share similar mechanisms; however, EIH is usually somewhat smaller in magnitude but more enduring than conditioned pain modulation so the 2 are likely distinct.[112],[195]

4.5. Psychological contributing factors

Changes in pain cognition might also account for some of the effect of acute exercise on pain. It has been shown that exercise can reduce ratings of pain unpleasantness in the absence of a change in ratings of pain intensity,[80] suggesting that alterations in the appraisal of noxious stimuli contribute to EIH. Cognitive and psychosocial factors including pain self-efficacy, coping strategies, fear of pain, and stress are known to underlie some of the difference in pain between athletes and nonathletes,[53],[75],[142] but their relation to EIH is less clear. For example, several studies have shown that individuals with higher levels of catastrophizing experience less EIH,[16],[131],[207] although this is not always observed and correlations between EIH and other psychosocial factors (eg, fear of pain, pain attitudes, and anxiety) seem negligible.[112],[201] Therefore, the contribution of cognitive factors to EIH remains poorly understood but seems limited. More studies are needed to investigate whether these cognitive factors are related to EIH and, more importantly, whether they can be manipulated to augment it.[81]

4.6. Impaired EIH: disrupted or distinct mechanisms

The mechanisms of EIH in individuals with chronic pain are equally if not more unclear. Because exercise has such varying effects on pain within and between individuals with chronic pain, it is difficult to determine whether there is a consistent mechanism that contributes to changes in pain with acute exercise. Moreover, it is not clear if the mechanisms of EIH in individuals with chronic pain are the same as pain-free individuals and are just disrupted, or whether separate mechanisms related to the presence of chronic pain are involved as well.

The fact that EIH can occur at exercised and remote sites in individuals with chronic pain shows that EIH is not always disrupted in these individuals.[38],[136],[197] However, there are also several demonstrations that exercise with a painful joint or muscle can either diminish EIH compared to when a nonpainful body part is exercised (ie, exercise of the upper limb in people with knee osteoarthritis, but pain measurement in the lower limb)[17] or, worse, can increase pain.[19],[20],[107],[177] These results are both opposite to what is normally seen in pain-free individuals where EIH is usually greatest for the exercised body part. Therefore, the results of the above studies provide some evidence that compared to healthy individuals, the mechanisms of EIH in individuals with chronic pain are both similar and distinct. However, because the mechanisms of EIH are still poorly understood in both groups, there is little direct evidence to support this.

Regarding mechanisms of EIH that may be similar, but disrupted, in individuals with chronic pain compared to pain-free individuals, altered excitability of the central nervous system after exercise is perhaps the most obvious. In pain-free individuals, acute exercise reliably reduces temporal summation,[96],[196],[206] whereas the opposite effect has been observed in individuals with chronic pain.[197],[206] By contrast, one of the few studies to combine acute exercise with analgesic medication showed that paracetamol and placebo had comparable effects on temporal summation and conditioned pain modulation after exercise in pain-free individuals and individuals with chronic pain.[122] Because paracetamol is a predominantly central acting agent that can affect opioids, cannabinoid and serotonergic pathways,[168] this finding provides little support to the notion that exercise reduces pain through central changes in these pathways or that differences in the sensitivity of these pathways through exercise accounts for the greater EIH in pain-free individuals compared to individuals with chronic pain. More studies using drugs with less ubiquitous effects would be useful to further investigate how different substances are involved in EIH in humans and whether these differ between pain-free individuals and individuals with chronic pain.

As for mechanisms of EIH that might be distinct between pain-free individuals and individuals with chronic pain, reductions in inflammation by acute exercise are one such possibility. Inflammation plays a key role in the pathogenesis of several chronic pain states, so it is possible that reductions in inflammation by exercise may reduce pain in these individuals. However, the results of studies examining the effect of acute exercise on inflammation in individuals with chronic pain are mixed and the relation between the changes in inflammatory markers and pain has seldom been explored. Moreover, differences in the exercise-induced changes in inflammatory markers between individuals with chronic pain and pain-free individuals were only sometimes, but not always, observed. Therefore, it remains unclear to what extent EIH is related to acute changes in inflammation by exercise in individuals with chronic pain or whether this is a distinct mechanism of EIH in these populations. Another possibility is opioid-induced hyperalgesia. As already mentioned, interactions between EIH mechanisms and the use of analgesics may affect the response to exercise. Individuals treated with opioids report less CPM,[155] and reduced effects of opioids have been reported in animals after long-term exercise.[174] This may be explained by opioid-induced hyperalgesia which, paradoxically, leads to a reduction in central opioid receptor availability[60] and hence less potential to modulate pain through opioidergic mechanisms (as shown in pain-free individuals.[152]

Psychosocial and cognitive factors are heavily implicated in the development and persistence of chronic pain.[34] These same cognitive factors influence responses to experimental noxious stimuli in pain-free individuals as well,[150] but their relation to EIH has seldom been examined, particularly in individuals with chronic pain. Accordingly, it is still not known whether cognitive factors are directly involved in EIH, or, perhaps more importantly, whether they can be manipulated to influence pain responses to exercise. Although there is some evidence to support this in pain-free individuals,[81] it remains to be determined whether preceding exercise with education can also influence EIH in individuals with chronic pain in whom negative expectations about pain and exercise are more prevalent and therefore likely harder to change. It may be that, because of their more entrenched negative beliefs about pain and exercise, more intensive education is required in individuals with chronic pain to produce the same effect. Some combination of pain neuroscience education and EIH education might also be required. Nonetheless, if the effect can be replicated in individuals with chronic pain, it could have important applications for exercise prescription in clinical practice.

Regarding regular exercise, despite the large number of studies that have shown exercise training to reduce pain in people with chronic pain,[49] the mechanisms by which it does this is poorly understood. This is largely because many of the studies did not analyze which changes occurring with exercise (biological and/or psychological changes) were associated with the observed improvements in pain. Moreover, few of the studies investigated where in the nociceptive pathways (ie, peripheral, spinal, and/or supraspinal pathways) changes might be occurring due to exercise, which could account for the observed reductions in pain. As a result, the precise mechanisms of pain attenuation by exercise training are not known, but several possibilities exist that are likely common to individuals with chronic pain.

Improved structure and function of the musculoskeletal system is one such possibility. In people with knee osteoarthritis, chronic exercise can improve several musculoskeletal factors important in the development and progression of the disease including body mass, joint alignment, proprioception, cartilage structure and function, inflammation, and muscle strength.[6],[160] Of these possible mediators, improvements in muscle strength are the strongest contributor to the positive effect of physical exercise on improved osteoarthritis symptoms.[160]

Desensitization of the nervous system is another possibility. In humans, exercise-induced changes in biomarkers associated with nociceptive pathways have been reported (eg, inflammatory factors and neurotransmitters),[83] but again it is not clear whether these changes reduce pain due to the peripheral or central actions of these factors. Preliminary evidence shows that exercise can normalise aberrant brain activity in people with fibromyalgia.[41] This finding is in agreement with the results of a few cross-sectional studies showing that people with fibromyalgia who are more physically active have more typical brain responses to pain compared to less active individuals.[37],[120] However, not all studies have shown chronic exercise to attenuate aberrant brain responses in individuals with chronic pain,[126] so the role of changes in brain activity as a mechanism of pain relief by regular exercise remains unclear.

Finally, exercise-induced improvements in mood could be another shared mediator of the positive effect of exercise on pain in individuals with chronic pain. The role of both general (eg, depression and anxiety) and pain-specific (eg, catastrophizing and self-efficacy) psychosocial processes in the development and maintenance of chronic pain is clear.[34] Many of these psychosocial factors are positively influenced by exercise,[85],[183] so it is plausible that this could result in improvements in pain either directly or indirectly through changes in both the sensory and emotional aspects of pain.

5. Implications and future perspectives

5.1. Clinical implications

Most types of exercise can reduce pain sensitivity at exercising and nonexercising muscles in pain-free individuals, with a larger hypoalgesic response at the exercising muscles. In individuals with chronic pain, the hypoalgesic response after exercise is less consistent; however, in addition to other well-documented physical and mental health benefits related to exercise, exercise can sometimes induce hypoalgesia in individuals with chronic pain. Regarding exercise prescription in clinical settings, it may be worth considering: (1) that exercising nonpainful body areas if possible as well as using low-intensity exercises such as walking may be useful as a first step, (2) that individuals' beliefs, expectations, and exercise preference should be assessed before exercise prescription to minimize the risk of a poor outcome, and (3) that these beliefs and expectations could be modified through education or other interventions to improve pain responses to exercise in people with chronic pain. There is some evidence that combining exercise training and education has superior effects compared to exercise alone in individuals with chronic pain,[15],[153] but this is yet to be properly explored in the context of pain responses to a single bout of acute exercise in individuals with chronic pain.

5.2. Implications for future exercise-induced hypoalgesia studies

In addition to the above-mentioned implications, we also propose several methodological recommendations for future studies of EIH. First, studies should use a randomized controlled design (parallel or crossover), or at the very least include a control group/condition. This is because the causal effects of exercise on pain are best inferred from randomized controlled trials. As shown in Tables 1 and 2, there have been well over 150 studies of EIH in pain-free individuals and individuals with chronic pain. However, the minority of these used a randomized controlled design or a nonrandomized controlled design. Instead, EIH was often investigated using a single-arm pre-post design. A major limitation of this type of study design is that the effects of habituation to noxious stimuli, as well as statistical phenomena such as regression to the mean, are not accounted for. To truly determine whether a single bout of exercise causes a reduction in pain, randomized controlled trials are needed. Second, it is important that these randomized controlled trials use large(r) sample sizes. The majority of EIH studies are small (n ≤ 50), and it is well documented that small studies are inherently biased to find larger effects.[26] Hence, most studies of EIH probably overestimate the effect of exercise on pain. Consequently, despite the enormous amount of EIH studies to date, the true effect of a single bout of exercise on pain is still unknown. Larger randomized controlled trials, of which there are currently very few, are clearly needed to determine this.

As evident in Tables 1 and 2, there is substantial heterogeneity in methodology used in EIH studies, making it difficult to synthesise the results of this vast literature. Therefore, we also recommend that future EIH studies share a somewhat common methodology so that the results between studies can be more easily compared. To this end, it may be useful for future studies to share a common method of pain assessment. Pressure pain thresholds at local and remote sites may be the most appropriate because these have been studied most often and do not require expensive equipment (although they may be more prone to experimenter bias if using handheld algometry). It would also be of benefit to include assessment of both experimental and clinical pain in individuals with chronic pain to better understand the effects of exercise on “real life” pain. Moreover, it may be useful to prescribe and report exercise using a common index so that the amount of work performed can be quantified. This would help clarify the dose–response effect of exercise on pain, a result that may have important clinical implications such as determining the minimal effective dose with respect to hypoalgesia for each mode of exercise as well as identifying volumes and/or intensities of exercise that may be more likely to exacerbate pain in individuals with chronic pain. Finally, Lee et al.[109] recently outlined several issues in clinical pain research including transparency, underpowered studies, and researcher degrees of freedom. The use of preregistration and registered reports, data sharing, and greater adherence to reporting guidelines were suggested as areas for improvement and we believe that EIH studies would benefit from adopting these recommendations.

Disclosures

The authors have no conflicts of interest to declare.

Footnotes

Sponsorships or competing interests that may be relevant to content are disclosed at the end of this article.

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