How do we know shrimp suffer more from asphyxiation than stunning?
By Cornelis Dirk Haupt @ 2026-08-08T01:14 (+63)
Note: I broadly have the same question for suffering from the coldness in a cold slurry. i.e. How do we know shrimp suffer more from coldness than stunning? I do want to establish cold slurry vs. stunning but want to focus on asphyxiation right now first.
Why do we think that suffocation would be more painful for shrimp than stunning? What, or how strong, is the evidence that suffocation via asphyxiation is actually a more negatively valenced experience for shrimp (and how do we know air hunger and suffocation is experienced negatively at all for shrimp?).
As I understand it, there is no evidence that shrimp possess type C nociceptors[1]. Ischemic and hypoxic tissue accumulates lactate and protons, and that acidosis activates acid-sensing type C nociceptors and this seems to directly lead to the experience of long-term suffering in humans.
A human with congenital insensitivity to pain still experiences air hunger however. Air hunger is a different system entirely. In vertebrates, dyspnea is driven by interoceptive respiratory chemoreception. But patients in a persistent vegetative state breathe spontaneously and mount chemoreflex responses to hypercapnia and hypoxia. The brainstem loop is intact; the experience is absent. So we have direct proof that the ventilatory chemoreflex and the felt state of air hunger are dissociable.
Ergo, asphyxia may plausibly produce two dissociable bad things: air hunger (interoceptive, non-nociceptive) and acidosis-driven nociceptive pain. And it may well be the latter which is important for establishing whether a being actually suffers.
- A living being with type-C nociceptors slowly dies from suffocation:
- chemoreceptors -> chemoreflex -> maybe this isn't experienced negatively?
- acidosis -> type C -> more acidosis -> sustained C-fibre firing -> "long pain" that accumulates over minutes
- A living being - like shrimp - without type-C nociceptors slowly dies from suffocation:
- chemoreceptors -> chemoreflex -> maybe this isn't experienced negatively?
- acidosis -> detected by acute Aδ channel -> more acidosis -> still detected by the acute channel, but it adapts -> onset burst; no accumulation of "long pain" that we would call suffering[2]
Massive "wait-a-second" alarm bell for me
Acute pain like that from electric stunning does not require type C nociceptor activation. All you need is fast, sharp "first pain" -> the Aδ channel -> which shrimp likely possess[3], since there is far better evidence that decapods show acute nociceptive-defensive responses than that they have a slow/tonic pain channel. So it seems possible that the benefit SWP assumes is far less certain than advertised, possibly near zero.
Why zero and not negative? Because both stunning and asphyxiation would carry some acute "first pain," but the asphyxiation here lacks the "long pain."
The intuition that asphyxiation is worse rides entirely on duration. But duration only decisively accumulates suffering if there's a sustained "long pain" signal to carry it across the minutes, and that's exactly the channel our current lack of evidence seems to point to shrimp lacking. No type-C -> no "long pain" -> long death is not a long agony.[4] It's an acute onset-burst and then an adapting channel, structurally like stunning minus the tonic tail. It only tips negative if the stun's brief jolt is more acutely intense than asphyxiation's onset. This is not obvious.
But hold on, dying via acidosis is trivially progressive in a way that exacting shock is not. pH keeps dropping, and a worsening stimulus re-drives even an adapting channel. So there's "acute channels firing multiple times" in asphyxiation which you could argue is trivially worse than "electric stun has the acute channels firing only once." I actually think this aggregation may well hold up. But I am uncertain. Shocking depolarises every axon in its path at once, which is a categorically different kind of event vs from a nociceptor discharging. It may well be that the acute pain from shock is vastly worse than several acute firings from asphyxiation. So we are left still with very real "possibly near zero impact for welfare by SWP.[5]"
What evidence do we need that could resolve this more decisively?
I think experiments here are genuinely missing?
Firstly, a) Is hypoxia aversive at all to shrimp? and b) How does that compare to the stun?
Is Hypoxia aversive at all to shrimp?
- Do shrimp make motivational tradeoffs? Will a shrimp pay a graded cost like abandoning shelter, cross an aversive bright field, forgo food etc., to leave hypoxic water?[6]
- Do shrimp make conditioned place avoidance? Will shrimp avoid a location associated with past hypoxia, in normoxic (ha, learnt a new word) water?
- Actually I think Michael St. Jules may have found some evidence for this
- What about pharmacological modulation? Does anaesthesia or an anxiolytic reduce hypoxia-escape beyond motor effects?
How does that compare to the stun?
- Will shrimp reveal a preference between the two? Give them a choice between brief shock and progressive hypoxia, or make escaping hypoxia cost a shock, and titrate.
- E.g. similar to Elwood's hermit-crab shock-vs-shell work that put two aversives on one scale
- Does a sub-lethal stun leave a lasting aversive signature? Are there prolonged grooming of the affected area, avoidance of the stun location, or altered predator-risk tradeoffs afterwards; if there is nothing, that bounds how bad the stun is, perhaps in a way that can be directly compared to shrimp that have experienced sub-lethal asphyxiation
- I will readily admit I am starting to feel uncomfortable thinking of setting up such an experiment for beings that may well suffer. But this does seem like the hole we have in our evidence.
If existing literature answers these I would appreciate a link!
(I am going to investigate the question of "pain from cold vs shock" next. Stay tuned.)
- ^
Crump et al. 2022 rate Criterion 3 (pathways from nociceptors to integrative brain regions) low for every decapod, explicitly on 'the absence of high-quality evidence one way or the other—not on evidence against.' → Crump et al. 2022, Animal Sentience
- ^
The one direct acid-sensing test in a penaeid found no behavioural response and no acid-responsive neurons. Granted, Elwood found the opposite in a caridean eyestalk. → Puri & Faulkes 2010, PLOS ONE and Elwood 2019
- ^
Crump et al. rate penaeids high on Criterion 1 (nociceptors) — one of only two criteria they score with real confidence. → Crump et al. 2022, Animal Sentience
- ^
Air hunger is the feeling of wanting to breathe more than you're managing to — so it needs drive that's ramped up and still unmet. Green crabs held in air didn't ramp up: gill pumping dropped within minutes and stayed low for an hour. Weak evidence, since pumping rate can't distinguish "no drive" from "drive that can't be expressed." But it's the only decapod measurement I can find, and it points away from air hunger being a thing in shrimps rather than toward it. → Wood & Po 2022, J Exp Biol
- ^
matthes has already made a version of this case from the operational side (animal welfare has an evidence problem). Reading the preprint, matthes found that at lower shock voltage/duration, neural activity sometimes increased, only 3/6 animals showed a 90% drop within 30 min, and that group had worse outcomes than 0°C ice slurry alone. His conclusion is that insufficient stunning with proper ice slurry may be worse than ice slurry alone, and stunning without proper ice slurry has real potential for harm. That is a route to "possibly net-negative" that doesn't depend on any of my neurobiology.
- ^
Baker 2003 (unpublished NCSU thesis) found brown shrimp entered hypoxic water significantly less with an uncaged predator present. But Bell et al. 2009 found blue crab movement rose with any water-oxygen change, hypoxic or not. So there could be a confound; either way, this remains untested in any penaeid. → Baker 2003, Bell et al. 2009
Meghan Barrett @ 2026-08-10T13:59 (+150)
Cornelis –
I’m glad to see such strong interest in the potential experiences of invertebrates. I’ll note that I agree with several major points: more research is needed, we don’t know what shrimp experience when shocked at low levels or when asphyxiated, and electrical shocks that don’t stun before slaughter seem worse than no stunning before slaughter. I elaborate on these points at the end.
But first I’d like to weigh in on some of the neurobiological and physiological points you raise. I am an academic insect neurobiologist and thermal physiologist and have taken a strong interest in invertebrate nociception since 2021. I co-authored the Gibbons et al. 2022 pain review on insects and a separate article rebutting common arguments against pain in insects (Barrett and Fischer 2025). I currently research larval farmed insect nocifensive behaviors as well as slaughter and stunning methods and am thus generally very interested in how invertebrates may experience death.
I spent only about two hours on these replies and so they may be imperfect as they rely mostly on my own background knowledge instead of new research (and I am not a shrimp nor human expert). Therefore, caution is advised and more reading into the peer-reviewed literature is warranted as not all of these areas are strong expert zones for me. Still, I think my replies will be useful. And I think there’s more that could be unpacked here with further research, which I did not have time to do.
Finally, this post shouldn't be taken as an endorsement of electrical stunning for invertebrates or of SWP.
1. “As I understand it, there is no evidence that shrimp possess type C nociceptors … All you need is fast, sharp "first pain" -> the Aδ channel -> which shrimp likely possess…”
Here, your claim for the lack of type C nociceptors has a citation of the lack of fulfillment of criterion 3 in Crump et al. 2022 - i.e., the absence of identified connections between peripheral nociceptors and sensory integrative brain regions. However, this is strange evidence for your claim, as signal integration in the brain does not bear on nociceptive fiber type. In humans, signals from both types of fibers do reach the brain – so whether the signal reaches the brain does not actually bear on which type of nociceptor even a vertebrate has. But, a look at Crump et al. also shows we have not proved that the signal does not reach the brains of the shrimps – rather, it just hasn’t been studied whether any signals could reach the brain in enough detail to fulfill the criterion. As you note in your footnote, then, absence of evidence is far from evidence of absence. All we can take from this ‘very low’ evidence for Criterion 3 in Crump et al. is a statement about what scientists have cared to study in decapods.
Second, comparing invertebrate nociceptors to vertebrate nociceptors based on “class” is always tricky business. For instance, shrimps have neither Aδ nor C type fibers in truth – these categorizations apply only to vertebrates, where nociceptors are classified based on “conduction velocity (fast or slow), diameter, amount of myelination, and the types of stimuli to which they respond” (Tracey, 2017). Aδ fibers, our ‘fast acting’ fibers, are myelinated and large, which allows for their rapid conduction velocities, and typically they only respond to one or two stimuli. However, shrimps (and other invertebrates) lack myelin in their nervous system, ruling out the possession of these fibers on the basis of myelin entirely.
C type fibers, our ‘slow’ fibers, are unmyelinated and smaller in diameter in vertebrates, which actually makes them a better analog for invertebrate nociceptors than the Aδ on that basis alone. Further, they are polymodal, which makes them much more similar to insect class IV (see below) nociceptors, which are also polymodal.
I am using insect examples here because they are crustaceans’ closest relatives (forming the group ‘Pancrustacea’ together, as the ancestor of insects was a crustacean) and we know significantly more about their nociception thanks to the model system of the fruit fly. So, if you were going to try and make an analogy between fiber types in vertebrates and invertebrates like insects/shrimps (which I would not recommend!), C type fibers would be the better bet structurally and, in some specific ways, functionally.
And, contra your claim that “since there is far better evidence that decapods show acute nociceptive-defensive responses than that they have a slow/tonic pain channel”, in fact, the correct prediction would be that shrimp nociceptors should be tonic, excitatory nociceptors. See, for instance, Puri and Faulkes (2010) hypothesizing that the shrimp nociceptors should be tonic: “Second, crustacean nociceptors are likely to be tonic excitatory neurons that will show a rapid and sustained increase in the rate of action potentials when exposed to potentially noxious stimuli.” As further evidence that invertebrate nociceptors can be both phasic and tonic, see the prolonged and non-accommodating phasic-tonic response of American cockroach nociceptive responses in Emanual and Libersat (2019).
In truth, though, it is better to leave behind entirely the categorizations of C and Aδ fibers when moving from mammals to invertebrates. In insects, we refer to their nociceptors as “class IV multidendritic arborization neurons” (for heat, mechanical and chemical responsiveness) and “class III multidendritic arborization neurons” (for cold). These neurons are unmyelinated and, as I described, polymodal with (at least in some cases) both phasic and tonic capabilities. The stimuli applied can also change how the nociceptor responds (re: phasic or tonic, as a single nociceptor can do both sometimes), at least in some insects (Caron et al. 2020) – and how this works likely changes by species.
2. “Ischemic and hypoxic tissue accumulates lactate and protons, and that acidosis activates acid-sensing type C nociceptors and this seems to directly lead to the experience of long-term suffering in humans.”
Zheng et al. (2021) indicates that in decapods that experience chronic hypoxia, cells will switch to anaerobic respiration to generate energy, with the resultant excessive accumulation of lactic acid occurring if metabolic demand outstrips removal capacity. So, it’s true that hypoxic tissue may accumulate lactic acid to toxic levels in decapods under hypoxia as well.
Importantly, in insects where these channels are better studied, class IV nociceptors are sensitive to some acids, including in insect larvae (some of which have pretty simple nervous systems with fewer neurons than shrimps; Lopez-Bellido et al. 2019) – leaving open the possibility of sensing tissue acidosis at the periphery with the nociceptors that these animals may plausibly have.
Regarding decapods specifically and their capacity to sense tissue acidosis as noxious via the nociceptors, it is hard to know what to make of the results highlighted in Puri and Faulkes (2010). They show an apparent lack of 1 mol/L and 6 mol/L (pH 0 and pH -0.78) hydrochloric acid sensing when applied externally on the antennae of multiple decapod species.
A few possible notes, however: acid nociception is not consistent across all acids in insects. For instance, in fruit fly larvae 9% citric acid (pH = 1.71) never elicits nocifensive behaviors while both lower pH 9% sulfuric and hydrochloric acid (pH ~ -0.4) and higher pH 9% acetic acid (pH = 2.23) do elicit responses (Lopez-Bellido et al. 2019). Puri and Faulkes (2010) do not detect responses when using hydrochloric acid; but Barr et al. (2008) and Elwood et al. (2017) both used higher pH acetic acid and found nocifensive responses on the antennae, eyestalk, or mouth. So, this could reflect differences in the kinds of chemicals the nociceptive channels can sense.
Alternately, variation in swabbing protocol across individuals could have impacted the results, as Puri and Faulkes note no consistent effects of the acid across all individuals, not no effects of the acid at all: “Although some neurons in some individuals increased their activity in the noxious condition, the variation from individual to individual indicates that these were spontaneous variations in neural activity rather than responses evoked by the noxious stimuli.” Importantly, it’s strange that they interpret this variation as spontaneous – as the traces shown in Figure 5 mostly seem to show this variation in the noxious treatment and not the saline controls (but, they may not be representative traces or I may be misinterpreting the result with such a quick review as I’m doing here). Lastly, single studies are never great evidence on their own - in general, we do want science to be built on a replicable and repeated body of work with molecular mechanisms also understood. The paucity of evidence here is extreme and it makes conclusions difficult to draw.
However, given that invertebrates have entirely different nociceptors than vertebrates, how much should we even port over from our understanding of human asphyxiation at all at this juncture? Further, given that asphyxiation may be experienced very differently for aquatic animals v. terrestrial animals, it seems at least plausible that we should be extraordinarily cautious with claims that attempt to generalize across such wide taxonomic and environmental/physiological boundaries. This definitely seems like an avenue where further investigation could be beneficial to better understand the arthropod experience of asphyxiation (which I have argued for insects is also unclear, as they may also be asphyxiated during slaughter; Barrett et al. 2022).
3. “A living being with type-C nociceptors slowly dies from suffocation:
- chemoreceptors -> chemoreflex -> maybe this isn't experienced negatively?
- acidosis -> type C -> more acidosis -> sustained C-fibre firing -> "long pain" that accumulates over minutes”
I know very little about human asphyxiation, so I cede a lack of peer-reviewed evidence in what briefly follows. It seems like asphyxiation plausibly contains more negative experiences than only pain, even for human beings that have type-C nociceptors. I asked Gemini about asphyxiation to death for humans; Gemini replied: “Suffocating triggers a violent, terrifying panic known as "air hunger". It feels like a crushing weight on the chest, a burning fire in the lungs, and a desperate, inescapable urge to breathe that no gasp can satisfy. Physical Sensations: Air hunger: A fierce panic reflex in the brain screaming for oxygen. Chest pressure: A heavy, tight weight crushing the ribs. Burning pain: A hot, stinging ache in the throat and lungs. Head rush: Throbbing temples, dizziness, and a hot, swelling pressure in the head”. This all seems like a pretty negative experience to me and much of it is happening before lactate has built up to the point that external tissue acidosis is the major problem.
My Cleveland Clinic also notes: “Your body will try to start breathing again, which may look frightening. Your eyes may bulge, your skin may change color, your hands may grab at your throat and you may weakly cough. Your blood pressure and heart rate increase sharply (spike), your blood pH drops and your body releases catecholamines.
Eventually, your blood pressure drops, and your heart slows down.”
[As we’ll see later with shrimps, a heart rate increase followed by a heart rate slow down is also exhibited in decapods subject to air exposure that are not adapted to emersion (point 5).] It seems to me, then, that this experience plausibly causes intense suffering even without necessarily inducing peripheral nociceptor activation, at least in the human case.
Further, it seems plausible to contest that the primary experience of suffering in humans is not actually due to acidosis in acute hypoxia of the kind that causes rapid death (perhaps it is the case in chronic hypoxia, where people have a disease that leads to a much slower accumulation of hypoxic tissue?) - my very minimal non-peer-reviewed reading suggests that tissue acidosis generally happens in minute 2-5 of suffocation while loss of consciousness often happens faster in average individuals under oxygen-store depletion models (1-3 minutes). So, it seems like most of the suffering may be unrelated to nociceptor activation through acidosis, which may be occurring most acutely after loss of consciousness. Also, the chemoreflex is apparently only one of several mechanisms regulating hypoxia response in humans and is not likely to be sufficient for explaining how we experience air hunger given what’s written in that article.
Finally, I suspect that we should take care in generalizing across even all experiences of ‘air hunger’. For instance, in humans I think this experience would be fundamentally different based on the way my air was short or cut off – for instance, if I were choked, I expect the suffering might be extreme; if I were a trained free diver, I might (?) have a different experience prior to passing out; and if my air were steadily replaced, the gas used and amount could do a lot of work in determining my suffering level (carbon monoxide v. carbon dioxide, for instance).
4. “But patients in a persistent vegetative state breathe spontaneously and mount chemoreflex responses to hypercapnia and hypoxia. The brainstem loop is intact; the experience is absent. So we have direct proof that the ventilatory chemoreflex and the felt state of air hunger are dissociable.
Ergo, asphyxia may plausibly produce two dissociable bad things: air hunger (interoceptive, non-nociceptive) and acidosis-driven nociceptive pain. And it may well be the latter which is important for establishing whether a being actually suffers.”
This claim seems potentially philosophically confused. First, nociception is not the only thing that produces suffering (and, pain can also happen without nociceptive input – see Tracey 2017), as already stated. Second, we also have direct proof that nociception and pain are dissociable. In humans, there is a nocifensive reflex that withdraws your hand from a hot stove that is dissociable from the felt state of pain experienced in your brain. An anesthetized person, without paralytics, can still respond reflexively to noxious stimulation, presumably without the experience of pain. Yet, the fact that there is a reflex involved does not dissuade us from being concerned about the felt state that may also be involved in humans. So, it does not follow any more than for nociception-pain that, just because the ventilatory chemoreflex and the felt state of air hunger can be dissociated, they are in fact totally dissociated in the living animal and thus it’s all reflex and no negative experience (or, at least, it doesn’t follow any more than this claim follows for nociceptive reflexes).
5. “Green crabs held in air didn't ramp up: gill pumping dropped within minutes and stayed low for an hour. Weak evidence, since pumping rate can't distinguish "no drive" from "drive that can't be expressed." But it's the only decapod measurement I can find, and it points away from air hunger being a thing in shrimps rather than toward it.”
Green crabs, according to the abstract, are a tidal species that naturally and regularly experiences daily in-air emersion as a part of their life cycle (“in nature, the green crab exhibits emersion and terrestrial activity at low tide”) and thereby have significant emersion adaptations. They will even preferentially go into air to avoid unfavorable positions in the water and are, explicitly, amphibious (living in both water and air by design). It is also described in the introduction of your cited study as a species with unusual hypoxia tolerance and unique gill structures that prevent collapse in air. This study looked at the effects of exercise on land for a species well-adapted to emersion. These data do not bear on marine shrimp that are not hypoxia tolerant, are not amphibious, and consequently have no emersion adaptations.
Better evidence for the effects of air exposure stress on shrimps not adapted to emersion might come from Wang et al. (2020), who found that air exposure activates the hypoxia response pathway and induced cell death in gill and hepatopancreas cells in one non-emersion-adapted shrimp species. Heart rate initially increased in response to air exposure, before beginning to decrease right around the time mortality picks up in the population and right after lactate levels peak (Figure 4a). This meta-analysis suggests that emersion is one of the most potent stressors for decapods not adapted to living in air (e.g., non-amphibious decapods), only preceded by trawling. I suspect more research on shrimp with variable hypoxia tolerance may be out there, but these studies were the first to come up in my search.
Do we have any other evidence that hypoxia seems to cause stress - potentially, a kind of suffering - for decapods behaviorally or physiologically? A review of the literature by Zheng et al. 2021 shows that, across diverse species, acute and chronic hypoxia can damage gill tissue, affect energy metabolism, impair intestinal function, diminish survival, cause cellular self-instructed death, induce oxidative damage (including increasing MDA levels, which may be worthy of investigation as a cross-taxa indicator of negative welfare: Beaulieu 2024), and impair reproductive tissue. Evidence points to the animals detecting hypoxic environments: they jump, reduce feeding frequency, rise to the surface, preferentially go to areas that are shallow with aquatic plants, and attempt escape (species that can go on land, such as crabs, apparently will favor emersion over hypoxic water). From a fitness perspective, it makes sense for these animals to be able to detect and attempt to avoid this fate - and welfare states are expected to be linked to fitness-affecting stimuli, encouraging animals to avoid what is bad for them by making it feel bad.
According to the review, acute hypoxic stress triggers the following physiological strategies, dependent on the species and context: higher ventilation and circulation rates to attempt to enhance oxygen levels in smaller-bodied species like shrimps; increasing oxygen-binding affinity of hemolymph proteins; and reducing movement to attempt to decrease metabolic demand. In entirely marine crustacean species without the right gill structure (unlike their amphibious or terrestrial counterparts), air emersion can eventually trigger collapse of the gills and this strongly correlates with death (Johnson and Uglow 1985).
6. “Acute pain like that from electric stunning does not require type C nociceptor activation. All you need is fast, sharp "first pain" -> the Aδ channel -> which shrimp likely possess[3],”
Electrical stunning causes pain by directly depolarizing neurons, and any and every neuron is sensitive to this stimulation regardless of their nociceptive potential or ‘fast’ or ‘slow’ conduction velocity. All these neurons are depolarized because they contain voltage-gated ion channels as part of their signaling mechanisms and so all that is necessary to trigger them is sufficient voltage.
Thus, both human A and C channels will be depolarized by electricity, as well as sensory interneurons that carry nociceptive signals onward and a host of other neurons – such as motor neurons – causing spasming as those cells activate, even though they are non-nociceptive. There may be different activation thresholds – for instance, larger and myelinated A-fibers seem to have lower electrical activation thresholds than smaller, unmyelinated C-fibers (from informal reading). But, at the thresholds used to stun an animal, you’re past the activation threshold of all these fiber types – in this zone, electricity is the great neuronal activation equalizer. Similarly, in invertebrates, all nociceptors depolarize with voltage-gated ion channels and are thus sensitive to electrical stimulation. In theory, electricity could also cause pain or suffering by activating more central neurons – not just peripheral nociceptors – as pain can occur without nociceptor activation in theory (Tracey 2017).
7. “Reading the preprint, matthes found that at lower shock voltage/duration, neural activity sometimes increased, only 3/6 animals showed a 90% drop within 30 min, and that group had worse outcomes than 0°C ice slurry alone.”
Electricity characteristics will matter to the experience of the animal undergoing stunning. For instance, pulse width, duration, and amplitude, voltage/current, how the electricity routes through the body, and even stunning context, like wet or dry, can affect the animals’ experiences. Significant increases in neuronal firing after electrical stun is actually expected in most animals: this is typically described as a general, epileptiform seizure in animals like pigs, characterized by sudden, abnormal surges of activity in the brain. In humans, pain is a recognized but rare part of epileptiform seizures – and pain more often accompanies the seizure ending and the return of normal brain activity. So, increases in neural activity are not inherently problematic following stunning, as consciousness can still be offline and pain thereby minimized during seizures that are tonic-clonic and generalized (in the way electrical stuns are expected to be). Still, even the Somerville study acknowledges that further research is needed to confirm if this increase in neural activity actually represents an epileptic insult and I think from their behavioral data that is an important gap to fill.
That said, Matthes is right to surmise that we should expect an incorrect stunning protocol that does not result in loss of consciousness followed by cold shock to be worse than cold shock alone. But, to me this is not surprising a priori? The same is true for chickens that are inadequately shocked before being blasted with hot water on the line. This does not, on its face, however indicate that correctly-done stunning at appropriate voltages and durations is worse for chickens – or for shrimps. It just means we should be very careful to dial in the stunning parameters to maximize successful, <1 second stunning that achieves loss of consciousness while minimizing the risk of accidentally shocking-but-not-stunning animals.
In your later sections on proposed research, you write about the value of looking at stunning that does not induce unconsciousness v. asphyxiation for shrimps – but actually, I think this question misses the point: we do not need to be investigating low-grade stunning because we never intend to be delivering ineffective stuns in the first place. Instead, we should be making stunning protocols that are definitively consciousness-losing in less than one second (and generate a loss of consciousness long-lasting enough to sustain that state during cold shock). That’s the only target worth aiming for. And, if we can successfully do that, then the animal’s response to lower voltages is a non-issue (barring the expected error rate of all stunning methods). My point is that we shouldn’t conduct research that may be extremely painful for the animals involved if we think it also doesn’t bear on the real-world application of the method we actually want to employ.
I have so many further thoughts on this – but perhaps I’ll save them for SWP, as I think I’m about out of the time I allotted myself here. 😉
So, where do agree?: “I think experiments here are genuinely missing?”
Yes. Absolutely. But I will tell you – as an animal researcher working on behavioral paradigms in poorly studied, non-model taxa with no baseline cognition research and little descriptions of even their sensory abilities, the experiments you propose are not easy to do. In insects, motivational trade-offs and conditioned place avoidance work have barely ever been done, even in bees and fruit flies, where thousands of labs work on these animals every year with millions of research dollars. Despite all that funding, effort, talent, and ingenuity aimed at these animals for nearly 60 years, these experimental paradigms have still proven somewhat challenging to test in even model invertebrates.
This is, in some ways, surprising. Different species of bees used as models for cognition research have been shown to count; to have abstract concepts of same and different; to remember human faces (see my 80K episode for more); and to independently solve the chimp-box-banana problem. Yet there has been only one attempt to study conditioned place/feeder avoidance in the species (and, done poorly, we contend in Gibbons et al. 2022). It’s the only such study I’m currently aware of in bees. So, should we expect this to be easy to do in decapods? Well, we have already demonstrated in this post that we barely have working, replicable acid nociception demonstration in any decapod… so, it would take a lot of work to go from the body of research you currently have to the kind of work you currently want.
Note: This isn’t to dissuade you! I am excited to spend my next ~forty years dedicated to the cognitive and nociceptive abilities of poorly studied animals. But you should expect the data you want to be methodologically difficult to obtain, expensive, and full of false negatives that have more to do with your assay design than your species’ capabilities. This work can be very, very hard to do well despite, on its face, being relatively easy to imagine.
I have some specific thoughts on the exact conduct of the experiments you proposed and the value of the data they’d provide. If you find someone interested in performing this work (and qualified), and a funder who cares to take it on, then I’d be happy to work with them on these questions and the question of whether the data are worth the money required to get them, given their expected impacts on our credences in the current empirical landscape.
I’m also interested in the question of cold nociception in shrimps, as you are; I’m deep in the tail flip literature, trying to understand how we can parse what a tail flip means when it comes to the nervous system’s response to see if that might give us some clues. This, it turns out, is complicated.
Finally, we also agree that we should do a good job validating our stunning protocols to ensure they are actually rendering animals rapidly unconscious and not simply shocking them before they go through slaughter. But, as expected, this work too is very challenging. The empirical literature published to date reflects the extraordinary difficulty, as does my own experience trying to get this to work in invertebrates. But, as Matthes suggests, it may be possible. And, if it is, it may indeed save the animals from the many plausible kinds of suffering that could be generated from asphyxiation.
Last thought: Of course, there is much more to learn on all fronts and I would encourage significant empirical work in this and many other areas of invertebrate welfare science. I returned to academia precisely for this reason, and believe strongly in the value empirical research can provide to the EA movement and the animals it aims to help. I live this belief through my own animal research program every day.
But a word of caution to all of us invertebrate-excited folks here on the Forum: I regularly see many inaccuracies when describing invertebrate nervous and physiological systems. Even with over a decade of research experience in this area, the vast array of adaptations and their extraordinary differences from mammals (and one another!) can lead me astray in making hasty assumptions about what invertebrates can do or how their bodies are structured. Please – please, please! – be careful with what you write on the Forum about these animals without getting expert peer-review. It is easy to make empirical mistakes with long-lasting impacts on others’ beliefs; I’m sure it’s possible I’ve even made some myself in my hasty and under-researched reply today.
To do better by these animals, we must start by bettering our understanding of these animals. We can only do that by providing each other with the best available, most accurate biological information we have. This rigor is a critical part of the EA community – and the invertebrates may need that from us more than most.
Angelina Li @ 2026-08-11T22:33 (+20)
I spent only about two hours on these replies
This is such generous engagement. Thank you!
Guillaume Reho @ 2026-08-19T18:54 (+1)
That's an interesting and important question (especially rebouncing on the evidence problem discussions), but I also believe that a few concepts were mixed up in this train of thought. Meghann's comment went above and beyond to answer all of it already, so I'll just share what I think are the most important take-home messages and what is most convincing (to me):
- Shrimp nociceptors, if categorized by analogy as C- or A- type receptors, most likely ressemble C-types neurons (although, as said, there are no such classification yet). It would thus be more accurate to say that shrimps possess only C-type nociceptors rather than not at all (again, by analogy only).
- Stunning is supposed to cause an immediate loss of consciousness, ideally not causing any pain. As explained, it should cause a huge burst of neuron activation in the entire nervous system, not just active nociceptive / pain pathways. Its goal is to make subsequent cold shock death insensibly. Pain could likely arise if animals are able to recover partially. Again, if it was shown that protocols are poorly done (poor stun, recovery, not cold enough water, etc), then yes, it's possible that SWP interventions could produce more harm than good (or at least not less). However, if the intervention does reduce suffering in ideal-enough conditions (which seems to be the case when looking at the little early evidence that we have), then it is part of the intervention to make sure that the ideal-enough conditions are met to ensure that the protocol stands true to its promises; which SWP does, as far as I know.
-> Thus, if asphyxiation does produce suffering the way you describe it (I know nothing about this stuff), then it would probably induce way more suffering than stunning followed by asphyxiation (or cold shock).
Also, by analogy again, I think we have pretty good evidence that stunning mammals before slaughter allows to reduce suffering. I don't know the literature, but since so much pigs are slaughtered in CO2 gas chambers suffocating, as well as so many lab mice, I guess we have some insights into how they live through asphyxiation (?). Either way, there is indeed a lack of evidence in shrimps (and invertebrates generally) on the exact way their nervous system works, but the evidence that we have suggests that its not that different than mammals to a point where these kind of experiences may be completely opposites; especially regarding nociception, which is quite relatively well conserved across the entire animal kingdom. Again, I may be completely wrong, and should be told if I am - but I share Meghann's views on the literature.