A Utah lab read cone-snail venom as an evolved chemical library and pulled a first-in-class painkiller out of it.

Conotoxins and Prialt

work active confidence: High status: Draft updated 2026-07-14

Type
work
Status
Draft
Confidence
High
Tier
A
Builder-tier
S
Activity-signal
2026-05 · https://pubmed.ncbi.nlm.nih.gov/42017756/
Activity-checked
2026-08-14
Focus
drug discovery, molecular neuroscience, venom peptides, non-opioid pain, ion channels
Era
late 1970s-present; founding peptide discovered 1979, Prialt approved December 2004
Primary Location
University of Utah, Salt Lake City, UT
Utah Location
University of Utah, Salt Lake City, UT
Updated
2026-07-14
Domain
health-bio
Region
Salt Lake City
Map Location
University of Utah, 201 Presidents Circle, Salt Lake City, UT 84112
Coordinates
40.7644827, -111.8503646
Location Precision
exact
Location Source
https://www.google.com/maps/search/?api=1&query=University+of+Utah+201+Presidents+Circle+Salt+Lake+City+UT+84112
Website
https://archive.unews.utah.edu/news_releases/new-painkiller-was-born-in-utah/
Relates
cites University of Utah News — New Painkiller Was Born in Utah · https://archive.unews.utah.edu/news_releases/new-painkiller-was-born-in-utah/
Relates
cites DailyMed — PRIALT (ziconotide) Prescribing Information · https://dailymed.nlm.nih.gov/dailymed/fda/fdaDrugXsl.cfm?setid=b025d8ed-937d-4597-9ad1-0b2f6e0ee5b1

Summary

Baldomero Olivera's University of Utah lab turned cone-snail venom into a precision toolkit for neuroscience and the drug ziconotide. Proving that a venom peptide could become an approved non-opioid treatment opened a global drug-discovery frontier, even though spinal infusion limits the medicine's reach.

Impact

Severe-pain treatment has long leaned on opioids, which are effective but carry overdose and dependence risk. Ziconotide opened a non-opioid route by blocking N-type voltage-gated calcium channels that help relay pain signals in the spinal cord. It is a difficult drug to use — it has to be infused into the fluid around the spinal cord through an implanted or external pump, and it can cause serious neurological side effects — but it proved that a venom peptide could become an approved human medicine aimed at a nervous-system target.

The broader conotoxin program mattered beyond one drug. Conotoxins became standard probes for sodium channels, calcium channels, nicotinic acetylcholine receptors, NMDA receptors, and other molecular machinery, giving neuroscientists worldwide a reusable library of reagents and drug leads.

What It Took

The hard technical problem was that venom is messy: hundreds of similar-looking small peptides, knotted by disulfide bonds, present in tiny quantities, with powerful biological effects. The Utah lab had to purify individual components, determine their structures, synthesize analogs, identify their molecular targets, and connect a toxin's effect on an animal to a human-relevant mechanism.

The conceptual move was to stop treating venom as a crude poison and start treating it as an evolved combinatorial library — each peptide a key shaped for one molecular lock in the nervous system. The 1982 paper by McIntosh, Cruz, Hunkapiller, Gray, and Olivera describing the Conus magus peptide is an early marker of that pipeline working end to end. The output was not a single device but a durable research method and a stream of leads.

Why It Mattered

Prialt is the clearest single proof point: a first-in-class, non-opioid analgesic whose active molecule was discovered in a Utah university lab. The development path then ran outside Utah — the biotech Neurex advanced ziconotide, Neurex was acquired by Elan, and commercial rights later passed to Jazz Pharmaceuticals (U.S.) and Takeda (Europe). That arc is itself instructive about how a university discovery reaches patients.

Just as important, the program helped legitimize venom-derived peptides as serious drug-discovery starting points, and it gave the field a continuing pipeline of candidates for pain and other neural-signaling disorders.

Utah Context

This is one of Utah's strongest examples of basic biology with global reach: a long-running University of Utah lab, the in-Utah discovery of the founding peptide, and a toolkit now used in neuroscience labs everywhere. It also shows a distinctive feature of the program — undergraduate and very junior researchers playing visible roles in the discovery pipeline, with McIntosh's story being the headline example. It connects to Utah's wider life-sciences ecosystem and sits alongside Capecchi Gene Targeting and the Knockout Mouse as evidence that Utah basic research has repeatedly changed medicine indirectly.

People and Institutions

  • Baldomero M. "Toto" Olivera — University of Utah biologist who founded and led the conotoxin research program.
  • J. Michael McIntosh — discovered and characterized the natural Prialt peptide as a young University of Utah researcher; later U faculty in psychiatry and biology.
  • Doju Yoshikami — University of Utah biologist who helped establish that the peptide blocked synaptic transmission.
  • University of Utah conotoxin researchers and students — purified, synthesized, and tested many venom peptides over decades.
  • Neurex, Elan, Jazz Pharmaceuticals, Takeda — companies that developed and commercialized ziconotide after the Utah discovery.

Lessons for Builders

  • Reframing a problem can be the breakthrough: treating venom as an evolved library, not a poison, made it searchable.
  • A research program with a reusable method outlasts any single product. The conotoxin toolkit keeps generating leads long after Prialt.
  • University discovery and commercial approval are different, multi-decade games. Founders translating lab work should expect the development and regulatory path to be longer and more capital-intensive than the discovery.
  • Niche approval still counts. Prialt is hard to administer and narrowly used, but it validated an entire non-opioid mechanism.

Evidence

Open Questions

  • Confirm the current commercial rights-holder for ziconotide before any page makes claims about today's market status.