Research · Embodiment and Regulation

Homeostasis and Allostasis

Homeostasis and allostasis are often presented as opposing models of biological regulation: one reactive and fixed, the other predictive and flexible. The scientific literature supports a more careful relationship. Both describe dynamic regulation, their explanatory domains overlap, and the precise boundary between them remains theoretically contested.

By Yona Ole Lobulu ·

Research note9 min readFoundationalD3.4

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Embodiment and Regulation
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The question

How should homeostasis and allostasis be distinguished, related and used without overstating the scientific consensus around their boundaries?

Definition

Homeostasis and allostasis are complementary regulatory concepts: homeostasis foregrounds the active maintenance of physiologically viable conditions, while allostasis foregrounds adaptive adjustment of regulation in relation to changing and anticipated demands.

The physiology is clearer than the terminology.

Living systems actively regulate internal conditions. Physiological variables change across time and context. Feedback processes constrain some of those changes. Behaviour and environment alter the demands placed on the organism. In some cases, physiological preparation begins before a demand is fully realized.

The existence of these broad regulatory phenomena is well established. Their theoretical organization is less settled.

Homeostasis and allostasis are two influential regulatory concepts used to describe this territory. Their explanatory domains overlap substantially, but they do not emphasize exactly the same features. The distinction between them can be scientifically useful, provided it is not treated as cleaner or more universally accepted than the literature supports.

Homeostasis is broader than fixed-state defence

Homeostasis is often reduced to a simple image: a variable moves away from a fixed target, a corrective mechanism detects the deviation, and the system pushes the variable back toward its set point.

That model captures an important form of regulation, particularly negative feedback, but it is too narrow to represent homeostasis as a whole.

As established in Homeostasis, homeostatic regulation is dynamic. Regulated variables can fluctuate within ranges. Reference conditions need not always be immutable. Multiple interacting processes can contribute to the relative stability of a physiological condition, and substantial changes elsewhere in the organism may be required to maintain it.

Walter Cannon's formulation of homeostasis was not a claim that living bodies remain literally unchanged. The concept concerns active regulation through which sufficiently stable internal conditions are maintained despite continuing disturbance and variation.

This matters because some sharp contrasts between homeostasis and allostasis depend on first defining homeostasis as rigid defence of fixed values. That is not the strongest scientific version of the concept.

What allostasis adds

Sterling and Eyer introduced allostasis partly in response to what they regarded as limitations in prevailing homeostatic formulations, especially models centred on fixed targets and correction after deviation.

As established in Allostasis, the concept places greater emphasis on adaptive regulation in relation to changing and anticipated demands. It draws attention to the fact that physiological activity appropriate under one set of conditions may be inappropriate under another, and that regulation can begin changing before the full consequences of a demand have arrived.

Later allostatic formulations, particularly those describing predictive regulation, made anticipation even more prominent.

This gives allostasis a distinctive explanatory focus. It asks not only how a physiologically important condition remains sufficiently constrained, but how regulatory activity changes as the organism's requirements change, and how present information can contribute to preparation for likely future demands.

Those are useful questions. Their usefulness does not establish that homeostasis and allostasis correspond to two completely separate physiological systems.

Why the simple distinction fails

One common formulation is memorable:

homeostasis reacts; allostasis predicts.

Taken as an absolute boundary, it does not survive scrutiny.

Anticipatory physiological regulation is empirically well established. Food-related sensory and learned cues, for example, can trigger preparatory digestive and metabolic responses before absorbed nutrients have produced their full effects. Influential allostatic theory gives this kind of anticipation a central role.

What does not follow is that all homeostatic regulation must therefore be exclusively reactive. Broader homeostatic accounts can accommodate changing conditions, anticipatory influences, adjustable reference values and context-sensitive regulation. Anticipation is therefore a meaningful emphasis within allostasis without functioning as a universally accepted categorical boundary.

The same problem applies to the contrast:

homeostasis uses fixed set points; allostasis changes them.

Set-point models are useful for some physiological systems, but homeostasis as a whole does not require every variable to be defended around one immutable numerical target. Depending on the system and model, regulation can involve ranges, thresholds or reference conditions that vary.

Allostasis is also broader than changing a target value. Influential formulations emphasize anticipation, demand sensitivity, coordinated adjustment and resource allocation across changing conditions.

Nor can the distinction be reduced to:

homeostasis creates stability; allostasis creates stability through change.

Homeostatic regulation itself can produce relative stability through continuous physiological change. Stability Is Actively Produced establishes the broader principle. “Stability through change” remains an important allostatic formulation, but it is not an exclusive property of allostasis.

Comparing the frameworks by dimension

A more accurate comparison treats homeostasis and allostasis as overlapping regulatory concepts with different emphases across several dimensions.

Core focus. Homeostatic emphasis: regulation of physiologically important conditions within viable bounds. Allostatic emphasis: adjustment of regulatory activity to changing and anticipated demands. Evidential caution: the explanatory problems overlap.

Physiological change. Homeostatic emphasis: fully compatible with dynamic regulation. Allostatic emphasis: change is especially foregrounded. Evidential caution: change itself does not distinguish the concepts.

Feedback. Homeostatic emphasis: central to many homeostatic accounts. Allostatic emphasis: compatible with allostatic regulation. Evidential caution: feedback processes can participate in regulation described through either framework.

Reference conditions. Homeostatic emphasis: can involve set points, ranges and adjustable values depending on the model. Allostatic emphasis: changing regulatory requirements are often emphasized. Evidential caution: fixed-versus-moving set point is too simple.

Context. Homeostatic emphasis: can accommodate context-sensitive regulation. Allostatic emphasis: behavioural and environmental context is especially prominent. Evidential caution: context sensitivity is shared; allostatic formulations foreground it more strongly.

Anticipation. Homeostatic emphasis: not usually the defining feature. Allostatic emphasis: central in influential allostatic formulations. Evidential caution: a meaningful difference of emphasis, not a settled exclusive boundary.

Organization. Homeostatic emphasis: often described through regulated variables and control relationships. Allostatic emphasis: often emphasizes coordinated organism-level adjustment. Evidential caution: distributed regulation is not exclusive to either framework.

Prediction. Homeostatic emphasis: not generally defining. Allostatic emphasis: explicit in some later allostatic theories. Evidential caution: stronger predictive theories require additional commitments.

The comparison does not identify two sets of mutually exclusive physiological mechanisms. It compares two regulatory concepts whose explanatory domains overlap. Many of the same neural, endocrine, metabolic, cardiovascular and behavioural processes can participate in regulation interpreted through either framework.

What allostasis makes easier to see

Overlap does not make allostasis redundant.

Scientific concepts can be useful because they foreground features that another framework places less centrally. Allostasis draws particular attention to demand, context, anticipation and coordinated organism-level adjustment.

A homeostatic analysis may focus on how a regulated condition is kept within viable bounds. An allostatic analysis may place greater emphasis on how several regulatory processes change together because the organism is entering a different context or preparing for a likely requirement.

These emphases can direct research toward different questions even when the underlying physiology overlaps.

This is one reason the Library retains allostasis as a distinct canonical concept. Its usefulness does not depend on proving that no form of homeostatic theory could represent the same phenomena. Its value lies in the regulatory features it makes explicit.

Why the boundary remains contested

There is also a serious case against drawing the distinction too sharply.

Contemporary homeostasis is more flexible than simple textbook control diagrams suggest. Dynamic variation, adjustable reference conditions, distributed control and adaptation to changing circumstances can all be incorporated into homeostatic explanations.

If allostasis is defined broadly enough to include every adaptive, contextual or anticipatory physiological change, its scope becomes difficult to delimit. The scientific question then becomes whether allostasis identifies a distinct category of regulation or reorganizes phenomena already compatible with broader homeostatic theory.

The literature does not provide one universally accepted answer. Influential allostatic formulations assign anticipation and demand-sensitive adjustment a distinctive theoretical role, while broader homeostatic accounts and critical analyses question whether those features establish a categorical boundary.

This disagreement should not be mistaken for evidence that anticipatory or context-sensitive regulation is unsupported. The physiological phenomena remain. What is contested is how they should be classified, how broadly each concept should extend, and whether the distinction corresponds to separate regulatory architectures or primarily different levels of description and emphasis.

Some disagreement is substantive; some is taxonomic

It would be equally misleading to dismiss the debate as mere semantics.

Some questions concern biological organization directly: what variables are regulated; how relevant changes are detected; how reference conditions are generated or adjusted; when regulatory responses begin; and how interacting systems are coordinated under changing demands.

These are substantive scientific questions.

Other disagreements concern classification. If physiological activity changes before a predictable demand, should that process be described as homeostatic, allostatic, predictive, anticipatory, or through some combination of these terms?

Terminology matters because conceptual frameworks can influence what researchers choose to distinguish, measure and compare. Naming a process differently, however, does not by itself demonstrate a different physiological mechanism.

An empirical finding can therefore be secure even while its preferred theoretical classification remains disputed.

Models can overlap without being interchangeable

This is where D2.12 — Scientific Models Are Tools becomes useful.

Scientific concepts do not need perfectly non-overlapping territories to provide explanatory value. Models and conceptual frameworks can organize some of the same phenomena while emphasizing different variables, mechanisms, scales or questions.

Homeostasis is especially useful when the explanatory problem concerns how physiologically important conditions remain constrained despite disturbance and variation.

Allostasis is especially useful when the explanatory problem concerns how regulatory activity adjusts to changing and anticipated demands.

The concepts can therefore offer complementary explanatory emphases without implying that every physiological event belongs uniquely to one category.

Their overlap should not be hidden. Neither should their differences.

What this distinction does not establish

Allostasis became closely associated with stress research, particularly through the work of Bruce McEwen, but allostasis is not another word for stress. Stress responses can involve demand-sensitive regulatory adjustment; their physiological organization belongs to D3.8 — The Stress Response.

A second boundary is especially important for the Library.

Evidence for allostatic regulation does not automatically establish a particular theory or measurement of allostatic load.

Allostasis concerns regulatory adjustment. Allostatic load is a further framework concerning cumulative consequences associated with repeated or sustained regulatory demands. Demonstrating anticipatory or context-sensitive regulation does not, by itself, validate a particular measure of cumulative load or establish that ordinary allostatic activity is inherently harmful.

Those questions require their own evidence and belong to D3.9 — Cumulative Stress and Allostatic Load.

The same regulatory distinctions will also matter downstream in D3.14 — Recovery Is an Active Process.

How the Library will use the terms

The scientific literature does not provide one universally settled boundary, but the Library still requires consistent terminology.

The Shifting Point Library will use homeostasis primarily for active regulation through which physiologically important conditions are kept within ranges compatible with continued functioning.

It will use allostasis primarily for adaptive adjustment of regulatory activity according to current and anticipated demands, especially where context sensitivity and anticipation are central to the explanation.

This is a calibrated usage convention, not a claim that every scientific tradition defines the terms identically.

The Library will not assume that homeostasis is exclusively reactive, that allostasis uniquely owns anticipatory regulation, that one concept has replaced the other, or that they correspond to entirely separate physiological machinery.

What can be stated with greater confidence is more useful than that binary.

Living systems actively regulate physiologically important conditions. Their regulatory activity varies with context and demand. Anticipatory physiological adjustment occurs. Homeostasis and allostasis organize these facts with different emphases, and those emphases can remain scientifically valuable even where their boundary is contested.

The distinction is most useful when it clarifies regulation without pretending that the terminology is more settled than the biology.

Sources and research record7 sources, with findings, strengths and limitations as entered

References

7 sources this piece rests on, as entered in the Library.

  1. Modell, H. et al. (2015) A physiologist's view of homeostasis

    Conceptual framework · Advances in Physiology Education, 39(4) · 259–266

    Supports modern treatment of regulated variables, physiological control and the limits of simplistic set-point interpretation.

    doi:10.1152/advan.00107.2015

  2. Billman, G. E. (2020) Homeostasis: The Underappreciated and Far Too Often Ignored Central Organizing Principle of Physiology

    Review · Frontiers in Physiology, 11 · 200

    Contemporary source for dynamic homeostasis and the inadequacy of treating homeostatic regulation as static equilibrium.

    doi:10.3389/fphys.2020.00200

  3. Sterling, P., Eyer, J. (1988) Allostasis: A New Paradigm to Explain Arousal Pathology

    Theoretical chapter · Handbook of Life Stress, Cognition and Health · 629–649

    Foundational source introducing the allostasis framework as a response to perceived limits in prevailing homeostatic formulations.

  4. Sterling, P. (2012) Allostasis: A model of predictive regulation

    Theoretical review · Physiology & Behavior, 106(1) · 5–15

    Describes regulation as a whole-organism achievement in which neural, endocrine, metabolic and behavioural processes are coordinated in anticipation of demand rather than governed by any single controller.

    doi:10.1016/j.physbeh.2011.06.004

  5. McEwen, B. S. (1998) Stress, Adaptation, and Disease: Allostasis and Allostatic Load

    Review · Annals of the New York Academy of Sciences, 840(1) · 33–44

    Important for adaptation, stress-related applications and the distinction between allostasis and allostatic load.

    doi:10.1111/j.1749-6632.1998.tb09546.x

  6. Ramsay, D. S., Woods, S. C. (2014) Clarifying the Roles of Homeostasis and Allostasis in Physiological Regulation

    Theoretical review · Psychological Review, 121(2) · 225–247

    Key adversarial source examining conceptual ambiguity, overlap and differing interpretations of the homeostasis/allostasis relationship.

    doi:10.1037/a0035942

  7. Teff, K. L. (2011) How Neural Mediation of Anticipatory and Compensatory Insulin Release Helps Us Tolerate Food

    Review · Physiology & Behavior, 103(1) · 44–50

    Supports the empirical existence of anticipatory physiological regulation independently of how the phenomenon is classified.

    doi:10.1016/j.physbeh.2011.01.012

Further reading

Behind this page

The claims this research note makes, the evidence behind them, and the limits it accepts.

Evidence status

High confidence

Strongly supported, though resting on synthesis or principle rather than a single decisive body of evidence.

Claims

  1. Living organisms actively regulate physiologically important internal conditions

    Established

    What this does not assert: Regulation is an activity, not the absence of change.

    1. Billman, G. E. (2020) Homeostasis: The Underappreciated and Far Too Often Ignored Central Organizing Principle of Physiology

      Review · Frontiers in Physiology, 11 · 200

      Contemporary source for dynamic homeostasis and the inadequacy of treating homeostatic regulation as static equilibrium.

      doi:10.3389/fphys.2020.00200

    2. Modell, H. et al. (2015) A physiologist's view of homeostasis

      Conceptual framework · Advances in Physiology Education, 39(4) · 259–266

      Supports modern treatment of regulated variables, physiological control and the limits of simplistic set-point interpretation.

      doi:10.1152/advan.00107.2015

  2. Homeostasis and allostasis have substantially overlapping explanatory domains

    High confidence

    What this does not assert: Overlap does not make either concept redundant.

    1. Ramsay, D. S., Woods, S. C. (2014) Clarifying the Roles of Homeostasis and Allostasis in Physiological Regulation

      Theoretical review · Psychological Review, 121(2) · 225–247

      Key adversarial source examining conceptual ambiguity, overlap and differing interpretations of the homeostasis/allostasis relationship.

      doi:10.1037/a0035942

    2. Sterling, P. (2012) Allostasis: A model of predictive regulation

      Theoretical review · Physiology & Behavior, 106(1) · 5–15

      Describes regulation as a whole-organism achievement in which neural, endocrine, metabolic and behavioural processes are coordinated in anticipation of demand rather than governed by any single controller.

      doi:10.1016/j.physbeh.2011.06.004

  3. Context sensitivity belongs to both regulatory territories, though allostatic formulations foreground it more strongly

    High confidence

    What this does not assert: A difference of emphasis, not of ownership.

    1. Ramsay, D. S., Woods, S. C. (2014) Clarifying the Roles of Homeostasis and Allostasis in Physiological Regulation

      Theoretical review · Psychological Review, 121(2) · 225–247

      Key adversarial source examining conceptual ambiguity, overlap and differing interpretations of the homeostasis/allostasis relationship.

      doi:10.1037/a0035942

  4. Allostasis is not equivalent to stress, and not equivalent to allostatic load

    Established

    What this does not assert: Regulatory adjustment, stress physiology and cumulative load are distinct questions.

    1. McEwen, B. S. (1998) Stress, Adaptation, and Disease: Allostasis and Allostatic Load

      Review · Annals of the New York Academy of Sciences, 840(1) · 33–44

      Important for adaptation, stress-related applications and the distinction between allostasis and allostatic load.

      doi:10.1111/j.1749-6632.1998.tb09546.x

  5. The Library uses homeostasis for active regulation within viable ranges, and allostasis for demand-sensitive and anticipatory adjustment

    Canonical inference

    What this does not assert: A calibrated internal usage convention, not a claim that every scientific tradition defines the terms identically.

  6. Homeostasis and allostasis can be treated as complementary explanatory emphases rather than competing systems

    Canonical inference

    What this does not assert: Neither concept has replaced or disproved the other.

    1. Ramsay, D. S., Woods, S. C. (2014) Clarifying the Roles of Homeostasis and Allostasis in Physiological Regulation

      Theoretical review · Psychological Review, 121(2) · 225–247

      Key adversarial source examining conceptual ambiguity, overlap and differing interpretations of the homeostasis/allostasis relationship.

      doi:10.1037/a0035942

  7. Whether allostasis constitutes a fundamentally separate class of regulation

    Open question

    What this does not assert: Recorded by the Library as unresolved.

    1. Ramsay, D. S., Woods, S. C. (2014) Clarifying the Roles of Homeostasis and Allostasis in Physiological Regulation

      Theoretical review · Psychological Review, 121(2) · 225–247

      Key adversarial source examining conceptual ambiguity, overlap and differing interpretations of the homeostasis/allostasis relationship.

      doi:10.1037/a0035942

  8. Whether anticipation uniquely distinguishes allostasis from homeostasis

    Open question

    What this does not assert: Anticipation may be an emphasis rather than a categorical boundary.

    1. Ramsay, D. S., Woods, S. C. (2014) Clarifying the Roles of Homeostasis and Allostasis in Physiological Regulation

      Theoretical review · Psychological Review, 121(2) · 225–247

      Key adversarial source examining conceptual ambiguity, overlap and differing interpretations of the homeostasis/allostasis relationship.

      doi:10.1037/a0035942

  9. Whether broader homeostatic models already accommodate many phenomena attributed to allostasis

    Open question

    What this does not assert: A live theoretical dispute in the physiological literature.

    1. Ramsay, D. S., Woods, S. C. (2014) Clarifying the Roles of Homeostasis and Allostasis in Physiological Regulation

      Theoretical review · Psychological Review, 121(2) · 225–247

      Key adversarial source examining conceptual ambiguity, overlap and differing interpretations of the homeostasis/allostasis relationship.

      doi:10.1037/a0035942

  10. Exactly where one concept ends and the other begins

    Open question

    What this does not assert: No universally accepted boundary is available.

    1. Ramsay, D. S., Woods, S. C. (2014) Clarifying the Roles of Homeostasis and Allostasis in Physiological Regulation

      Theoretical review · Psychological Review, 121(2) · 225–247

      Key adversarial source examining conceptual ambiguity, overlap and differing interpretations of the homeostasis/allostasis relationship.

      doi:10.1037/a0035942

  11. Whether the distinction reflects different mechanisms, explanatory levels, taxonomies or some combination

    Open question

    What this does not assert: D3.4 intentionally does not resolve this taxonomy beyond the evidence.

    1. Ramsay, D. S., Woods, S. C. (2014) Clarifying the Roles of Homeostasis and Allostasis in Physiological Regulation

      Theoretical review · Psychological Review, 121(2) · 225–247

      Key adversarial source examining conceptual ambiguity, overlap and differing interpretations of the homeostasis/allostasis relationship.

      doi:10.1037/a0035942

  12. Homeostatic regulation is dynamic and does not imply literal physiological constancy

    Established

    What this does not assert: Regulated variables can fluctuate within ranges.

    1. Billman, G. E. (2020) Homeostasis: The Underappreciated and Far Too Often Ignored Central Organizing Principle of Physiology

      Review · Frontiers in Physiology, 11 · 200

      Contemporary source for dynamic homeostasis and the inadequacy of treating homeostatic regulation as static equilibrium.

      doi:10.3389/fphys.2020.00200

  13. Negative-feedback processes are central to many forms of physiological regulation

    Established

    What this does not assert: Central to many accounts, but not the whole of regulation.

    1. Modell, H. et al. (2015) A physiologist's view of homeostasis

      Conceptual framework · Advances in Physiology Education, 39(4) · 259–266

      Supports modern treatment of regulated variables, physiological control and the limits of simplistic set-point interpretation.

      doi:10.1152/advan.00107.2015

  14. Physiological requirements change with behaviour and environmental context

    Established

    What this does not assert: What counts as appropriate activity depends on conditions.

    1. Sterling, P. (2012) Allostasis: A model of predictive regulation

      Theoretical review · Physiology & Behavior, 106(1) · 5–15

      Describes regulation as a whole-organism achievement in which neural, endocrine, metabolic and behavioural processes are coordinated in anticipation of demand rather than governed by any single controller.

      doi:10.1016/j.physbeh.2011.06.004

  15. Anticipatory physiological responses occur

    Established

    What this does not assert: Cephalic-phase responses precede the full metabolic effects of absorbed nutrients.

    1. Teff, K. L. (2011) How Neural Mediation of Anticipatory and Compensatory Insulin Release Helps Us Tolerate Food

      Review · Physiology & Behavior, 103(1) · 44–50

      Supports the empirical existence of anticipatory physiological regulation independently of how the phenomenon is classified.

      doi:10.1016/j.physbeh.2011.01.012

  16. Many regulatory processes are distributed across interacting physiological systems

    Established

    What this does not assert: Regulation is rarely traceable to a single pathway or hormone.

    1. Modell, H. et al. (2015) A physiologist's view of homeostasis

      Conceptual framework · Advances in Physiology Education, 39(4) · 259–266

      Supports modern treatment of regulated variables, physiological control and the limits of simplistic set-point interpretation.

      doi:10.1152/advan.00107.2015

    2. Billman, G. E. (2020) Homeostasis: The Underappreciated and Far Too Often Ignored Central Organizing Principle of Physiology

      Review · Frontiers in Physiology, 11 · 200

      Contemporary source for dynamic homeostasis and the inadequacy of treating homeostatic regulation as static equilibrium.

      doi:10.3389/fphys.2020.00200

  17. Homeostasis usefully foregrounds the active maintenance of physiologically viable conditions

    High confidence

    What this does not assert: An explanatory emphasis rather than an exclusive claim.

    1. Billman, G. E. (2020) Homeostasis: The Underappreciated and Far Too Often Ignored Central Organizing Principle of Physiology

      Review · Frontiers in Physiology, 11 · 200

      Contemporary source for dynamic homeostasis and the inadequacy of treating homeostatic regulation as static equilibrium.

      doi:10.3389/fphys.2020.00200

  18. Allostasis usefully foregrounds demand-sensitive and anticipatory adjustment

    High confidence

    What this does not assert: Its usefulness does not require a separate physiological system.

    1. Sterling, P., Eyer, J. (1988) Allostasis: A New Paradigm to Explain Arousal Pathology

      Theoretical chapter · Handbook of Life Stress, Cognition and Health · 629–649

      Foundational source introducing the allostasis framework as a response to perceived limits in prevailing homeostatic formulations.

    2. Sterling, P. (2012) Allostasis: A model of predictive regulation

      Theoretical review · Physiology & Behavior, 106(1) · 5–15

      Describes regulation as a whole-organism achievement in which neural, endocrine, metabolic and behavioural processes are coordinated in anticipation of demand rather than governed by any single controller.

      doi:10.1016/j.physbeh.2011.06.004

  19. “Stability through change” captures an important emphasis within allostatic theory

    High confidence

    What this does not assert: Homeostatic regulation can also produce stability through continuous change.

    1. Sterling, P., Eyer, J. (1988) Allostasis: A New Paradigm to Explain Arousal Pathology

      Theoretical chapter · Handbook of Life Stress, Cognition and Health · 629–649

      Foundational source introducing the allostasis framework as a response to perceived limits in prevailing homeostatic formulations.

Sources

  1. Modell, H. et al. (2015) A physiologist's view of homeostasis

    Conceptual framework · Advances in Physiology Education, 39(4) · 259–266

    Supports modern treatment of regulated variables, physiological control and the limits of simplistic set-point interpretation.

    doi:10.1152/advan.00107.2015

  2. Billman, G. E. (2020) Homeostasis: The Underappreciated and Far Too Often Ignored Central Organizing Principle of Physiology

    Review · Frontiers in Physiology, 11 · 200

    Contemporary source for dynamic homeostasis and the inadequacy of treating homeostatic regulation as static equilibrium.

    doi:10.3389/fphys.2020.00200

  3. Sterling, P., Eyer, J. (1988) Allostasis: A New Paradigm to Explain Arousal Pathology

    Theoretical chapter · Handbook of Life Stress, Cognition and Health · 629–649

    Foundational source introducing the allostasis framework as a response to perceived limits in prevailing homeostatic formulations.

  4. Sterling, P. (2012) Allostasis: A model of predictive regulation

    Theoretical review · Physiology & Behavior, 106(1) · 5–15

    Describes regulation as a whole-organism achievement in which neural, endocrine, metabolic and behavioural processes are coordinated in anticipation of demand rather than governed by any single controller.

    doi:10.1016/j.physbeh.2011.06.004

  5. McEwen, B. S. (1998) Stress, Adaptation, and Disease: Allostasis and Allostatic Load

    Review · Annals of the New York Academy of Sciences, 840(1) · 33–44

    Important for adaptation, stress-related applications and the distinction between allostasis and allostatic load.

    doi:10.1111/j.1749-6632.1998.tb09546.x

  6. Ramsay, D. S., Woods, S. C. (2014) Clarifying the Roles of Homeostasis and Allostasis in Physiological Regulation

    Theoretical review · Psychological Review, 121(2) · 225–247

    Key adversarial source examining conceptual ambiguity, overlap and differing interpretations of the homeostasis/allostasis relationship.

    doi:10.1037/a0035942

  7. Teff, K. L. (2011) How Neural Mediation of Anticipatory and Compensatory Insulin Release Helps Us Tolerate Food

    Review · Physiology & Behavior, 103(1) · 44–50

    Supports the empirical existence of anticipatory physiological regulation independently of how the phenomenon is classified.

    doi:10.1016/j.physbeh.2011.01.012

Where to go from here

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Interoception

The nervous system continuously processes information about conditions inside the body, but only some of that processing becomes consciously felt. Interoception describes this broader territory—and explains why bodily physiology, bodily awareness and the ability to measure internal signals must not be treated as the same thing.

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