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Biology subjects

Acyatan, Z. G.

Publications and source records attributed to Acyatan, Z. G..

3 recordsLinked to original sources

Prey-specific toxins provide broad venom activity in cephalopods

Cephalopods are among the oceans most sophisticated predators that use camouflage, complex behaviors, and venom to subdue a wide range of prey. However, the functional role of venom across diverse prey remains poorly understood, particularly whether cephalopods deploy venom to capture fish. Through comprehensive transcriptomic profiling of venom glands, we identify toxins with molecular signatures of prey-specific adaptation, including a previously unrecognized family of peptide toxins, octotensins, that evolved through convergent evolution to mimic the vertebrate hormone neurotensin. Functional assays and cryo-electron microscopy demonstrate that octotensins potently activate fish and human neurotensin receptor 1, engage this target in a near-identical manner to the chordate hormone, and induce acute hypotension in rodents. Together, our findings demonstrate that cephalopods achieve broad venom activity through phylum-specific toxins, including those targeting fish, revealing an evolutionary strategy by which generalist predators can capture phylogenetically diverse prey. One-Sentence SummaryCephalopod venom comprises prey-specific toxins, including neurotensin-mimicking peptides that target fish.

systems biology↗

Mimics of the chordate gut-brain hormone neurotensin in parasitic intestinal hookworms

Hookworms of the family Ancylostomatidae are intestinal parasites that infect hundreds of millions of people worldwide, contributing to malnutrition, anemia, and impaired development. While hookworms are known to secrete immunomodulatory molecules to evade host defenses, it has been unclear whether they also exploit host hormonal signaling. Here, we identify a previously unrecognized family of hookworm peptides, which we term ancylotensins. Ancylotensins share strong sequence similarity with the chordate hormone neurotensin, a key regulator of metabolism, gut-brain communication, and intestinal function. In vitro pharmacological assays, ex vivo gut contractility studies, and cryo-electron microscopy demonstrate that ancylotensins closely replicate both the structural and functional properties of mammalian neurotensin to modulate gut function. Furthermore, ancylotensins do not share common ancestry with chordate neurotensin and instead evolved independently via convergent evolution. These findings reveal the existence of gut peptide mimicry as a mechanism by which intestinal parasites can manipulate host physiology.

biochemistry↗

Conkazal-M1 from the MKAVA family of conotoxins - a dual-function protease inhibitor and neuroactive peptide

Marine cone snails produce a diverse array of bioactive peptides, known as conotoxins, in their venom. Given their high target potency and specificity, conotoxins are attractive compounds for the development of precision research tools and pharmacological agents. Here, we provide the first experimental characterization of a conotoxin from the MKAVA superfamily, conkazal-M1, from Conus magus. Using NMR spectroscopy, we show that conkazal-M1 adopts a fold characteristic of the Kazal-type protease inhibitor family, featuring a Glu residue at the inhibitory P1 position. Recombinantly expressed conkazal-M1 inhibits the proteolytic activity of Subtilisin A with an apparent Ki of 1.1 M. In addition, conkazal-M1 partially inhibits calcium transients in mouse sensory neurons, suggesting a potential role in modulating ion-channel activity, as seen for many other toxins. The dual function of conkazal-M1 in protease inhibition and neuroactivity is analogous to the dual function of several toxins harboring a Kunitz-type fold. The well-conserved sequence of the MKAVAs indicates an evolutionary trajectory in which these proteins face an adaptive conflict, where mutations that enhance one activity compromise the other. Collectively, this work provides new structural and functional insights into a previously uncharacterized toxin superfamily in cone snails, illustrates how structural scaffolds can be repurposed for functions that diverge from the original while retaining their overall structure, and expands our understanding of the toxin arsenal available to venomous animals.

biochemistry↗