G-Link CAR-T Delivery Platform Showcased at ASGCT

Vyriad reports that it will showcase its latest CAR T delivery technology platform, G-Link, through a schedule of presentations, technical sessions, and exhibition activities at ASGCT. The modular plug-and-play protein adapter developed in collaboration with Menachem Rubenstein, PhD, of the Weizmann Institute allows drug developers to cap and retarget existing lentiviral vectors for in vivo delivery, according to the company.

By leveraging G-Link, wild-type lentiviral vectors can be reprogrammed for in vivo applications without the need for intensive vector re-engineering, effectively shortening development timelines for next-generation CAR T and other cell therapies, notes a company spokesperson, who adds that G-Link can also be used to simplify ex vivo CAR T manufacturing and significantly improve T cell transduction efficiency without redesigning vectors.

“I believe that G-Link can address some of the most persistent challenges in in vivo delivery and we are excited to unveil it at ASGCT this year,” says Stephen Russell, PhD, CEO of Vyriad. “Our participation this year underscores our clear mission: to replace complex, weeks-long manufacturing cycles with precise, off-the-shelf immunotherapies. With G-Link, we aim to foster collaborations that will define the next generation of in vivo cell therapies.”

Vyriad’s VV169 in vivo CAR T program will progress into clinical development later this year, while the G-Link platform will advance towards clinical translation later in the future, continues Russell.

 

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Human Antibodies Identified That Have Potential To Prevent and Treat Measles Virus

Scientists at La Jolla Institute for Immunology (LJI) say they are the first in the world to characterize human monoclonal antibodies (mAbs) capable of neutralizing measles virus (MeV). The antibodies, derived from the memory B immune cells of an individual who had previously received the MMR vaccine years previously, bind to key hemaggglutinin (H) and fusion (F) surface virus proteins, preventing viral entry into host cells.

The researchers, headed by Erica Ollmann Saphire, PhD, LJI professor, president, and CEO, say the new panel of human antibodies may form the basis for future medical therapies against measles infection. In their newly reported study the team showed that an infusion of the antibodies resulted in 500-fold lower viral load in a rodent model of measles infection.

“These antibodies work as prophylaxis—to protect from initial infection—and they work after viral exposure as a treatment to fight measles infection, said Saphire. “It may be possible to give someone an infusion of these antibodies and deliver the immune response they wish they had.”

In their study (“Human neutralizing antibodies targeting the measles virus hemagglutinin and fusion surface proteins”) reported in Cell Host & Microbe, the team concluded “Characterization of these fully human mAbs provides avenues for prophylactic or therapeutic intervention against re-emerging MeV.”

Measles virus is “… a highly transmissible paramyxovirus, can cause severe complications and death, particularly in infants and young children,” the authors wrote. “A live-attenuated vaccine derived from a genotype A MeV strain provides vaccinees with lifelong immunity and protective antibodies against all 24 MeV genotypes in circulation.”

However, in recent years, decreased vaccination rates have led to deadly measles outbreaks across the U.S. and around the world. This sharp rise in measles cases is especially dangerous for the millions of people who cannot receive a measles vaccine. While the measles vaccine is incredibly safe and effective, it does contain a live, weakened virus. This means that people who have compromised immune systems, such as those who are pregnant or receiving chemotherapy, including children, cannot receive the vaccine. The very young are also at risk. Infants must wait until they are 12 months old to be vaccinated, and most children in the U.S. aren’t fully vaccinated against measles until they are six years of age.

“There are a growing number of people that can’t be vaccinated or haven’t been fully vaccinated,” said Saphire. “The very same people who can’t be vaccinated or can’t be vaccinated yet, are the same people for whom a measles virus infection would be the most severe—or be lethal.”

Until recently, enough people were vaccinated against measles virus that the risk of exposure for this unvaccinated group was very low. Unfortunately, that community protection—herd immunity, is no longer. LJI scientists are on a mission to find treatment options for the most vulnerable.

There are currently no measles-specific therapies to help patients. The new study shows that monoclonal antibody therapies may may be a feasible option. Monoclonal antibody treatments contain many copies of a neutralizing antibody, and are widely used for a variety of infectious diseases. Even infants receive monoclonal antibody therapies each year to prevent respiratory syncytial virus (RSV).

To design a monoclonal antibody treatment for measles, researchers need a clear picture of how human antibodies fight the virus. However, as they noted, “Despite the global presence of MeV and widespread use of the vaccine, few studies have mapped the human antibody response. We do not yet know how human antibodies, from either measles vaccination or natural infection, recognize and protect against the virus.”

Saphire and her colleagues began by harnessing an imaging technique, cryo-electron microscopy (cryo-EM), to capture the first-ever glimpses of how antibodies bind to the measles virus. They started by examining mouse antibodies, and published that work in a recent paper. That initial study showed where measles virus is vulnerable to antibody attack. The mouse antibodies, the researchers showed, latched onto the virus fusion protein, to block viral entry into a cell.

To find out whether human antibodies could do the same thing, the researchers analyzed blood from a clinical research volunteer. “We evaluated 15 MMR-vaccinated donors for their polyclonal MeV responses to identify individuals with vaccine-induced, protective, circulating antibodies,” they explained. The 56-year-old female volunteer they selected had been vaccinated against measles many years before, and already had antibodies ready to fight measles virus. This individual “… demonstrated the highest polyclonal response and the most H- and F-reactive memory B cells.”

From the one blood sample, the LJI scientists isolated antibodies that bind to the measles virus fusion protein, along with other antibodies that bind to the virus hemagglutinin protein. They then captured 3D images of these antibodies bound together with the measles virus. “We found that these antibodies are exceptionally potent,” said study first author, LJI Instructor Dawid Zyla, PhD. “Two orders of magnitude better than comparable molecules reported at conferences.”

Measles virus is a shape-shifting virus. When it meets a human cell, it unfolds to reveal viral machinery that fuses with the host cell membrane. The new study shows that antibodies targeting the fusion protein work by locking the protein in place, leaving the virus unable to shape shift and infect a host cell. The next step was to test these antibodies in a preclinical animal model. Study collaborators at The Ohio State University carried out key experiments in cotton rats. They found that all four lead antibodies reduced viral load when given either before measles exposure or within 24 to 48 hours after measles virus infection. One antibody, designated 3A12, which binds to a site on the F protein, rendered the circulating virus actually undetectable.

While more work needs to be done, the researchers see these antibodies as promising tools in the fight against measles. Their new images of the antibody structures provide the materials needed to make the world’s first before- or after exposure treatment for measles virus. “Now we know what we’re aiming for, and we have the antibodies we need,” said Saphire.

In their paper the authors stated, “The protective mAbs identified here target four distinct, non-competing epitopes, and may be combined as cocktail therapies to enhance treatment potency, maintain durable protection, and reduce the risk of viral escape.… these human mAbs themselves, which recognize conserved sites and inhibit measles by complementary mechanisms, represent a basis to develop a treatment that is urgently needed as measles virus infections surge globally.”

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Oral Small-Molecule GLP-1s Linked to Deep Brain Activity and Reduced Cravings in Mice

Interest in glucagon-like peptide 1 receptor agonists (GLP-1s) continues to surge due to their effectiveness in reducing body weight and improving metabolic outcomes. This includes interest in small molecule oral GLP-1s which are more bioavailable and more easily manufactured than their injectable counterparts.

Now data from a new study in mice performed by scientists at the University of Virginia shows that this emerging class of weight-loss drugs suppress hedonic eating by modulating a reward circuit deep in the brain that is separate from previously described mechanisms that broadly affect appetite. The scientists believe that this pathway could be an avenue by which GLP-1s treat other dysfunctions in reward processing such as substance use disorders.

Details of the National Institutes of Health-funded study were published this week in a Nature paper titled “A brain reward circuit inhibited by next-generation weight-loss drugs in mice.” In it, the team reported that they investigated the small-molecule GLP-1s including Eli Lilly’s recently approved drug orforglipron, also known by the brand name Foundayo, as well as danuglipron, an oral GLP-1 that was being developed by Pfizer until the company decided to discontinue its development in 2025. 

Previous studies that explored the effects of larger peptide GLP-1s such as semaglutide in the brain have found that they suppress hunger-driven eating by engaging networks in the hypothalamus and hindbrain. What has been less clear is the mechanism by which small-molecule GLP-1s work. “As the accessibility of these medications continues to rise and patient uptake increases, it’s crucial that we understand the neural mechanisms underlying the effects we’re seeing,” said Lorenzo Leggio, MD, PhD, clinical director of NIH’s National Institute on Drug Abuse.

The current study gets scientists one step closer to that goal. According to the paper, the scientists first used gene editing to modify the GLP-1 receptors of mice to make them more humanlike. They then administered orforglipron or danuglipron to the mice, and identified brain regions where the drugs induced activity. The results showed that in addition to inducing activity in familiar pathways, the drugs also triggered the central amygdala, a region associated with desire that is deeper in the brain than scientists previously thought GLP-1s could directly reach. Further testing showed that once activated, the central amygdala reduced the release of dopamine into key hubs of the brain’s reward circuitry during hedonic feeding. 

“We’ve known that GLP-1 drugs suppress feeding behavior driven by energy demand,” said co-corresponding author Ali Guler, PhD, a professor of biology at the University of Virginia. “Now it seems oral small-molecule GLP-1s also dial back eating for pleasure by engaging a brain reward circuit.”

Given the effect of these drugs on eating for pleasure, future studies could explore whether small-molecule GLP-1s can also suppress cravings for other addictive substances. It is a question that the team hopes to explore in follow up studies focused specifically on substance use disorder. 

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Digital PCR Playbook: Applications and Challenges Across Research and Clinical Labs



Image of Alex Zevin, PhD

Alex Zevin, PhD

Director, Genomics Shared Resource
Fred Hutchinson Cancer Center

Panelist

Image of Alex Zevin, PhD

Alex Zevin, PhD

Alex Zevin, PhD, began serving as the director of the Genomics Shared Resource at Fred Hutch in December 2022. Before that, he was a research scientist at ArcherDX where he developed NGS in vitro diagnostic devices including several clinical trial assays and an approved companion diagnostic. He also previously worked at InBios International and developed a rapid test for detection of anthrax.

Zevin has a bachelor’s degree in biochemistry from Colorado State University and a PhD in molecular biology from Arizona State University where he developed methods to characterize bacterial communities in engineered systems and conducted postdoctoral research at the University of Washington studying host-microbe interactions in non-human primate models.



Broadcast Date: 

  • Time: 

Digital PCR has emerged as a powerful approach for precise nucleic acid quantification, but it is constrained by limited dynamic range and the difficulty of multiplexing. Newer platforms, like Countable Labs’ single-molecule counting PCR, address both by offering precise quantification across a broad range of target abundances while simplifying multiplexing through single-molecule isolation and fluorescent imaging across millions of spatially fixed compartments.

In this GEN webinar, Alex Zevin, PhD, director of Fred Hutchinson Cancer Center’s Genomics Shared Resource, draws on hands-on experience with managing a suite of nucleic acid quantification technologies, including standard qPCR, digital droplet PCR, and Countable PCR, to share practical guidance for labs considering or expanding their PCR quantification capabilities. Key insights from the webinar include:

  • How single-molecule counting differs from conventional digital PCR—and the sensitivity, precision, and multiplexing advantages it enables
  • Real-world applications suited to single-molecule counting PCR, including validating NGS results, replacing or supplementing existing assays, and generating clinically actionable data
  • Common challenges for converting qPCR and dPCR assays to single-molecule counting PCR, and how to overcome them

A live Q&A session will follow the presentations offering you a chance to pose questions to our expert panelist.

Produced with support from:

Countable Labs logo

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Cellular Origins Collaborates with Immatics on Automation for Cell Therapy Manufacturing

Cellular Origins agreed to collaborate with Immatics in utilizing Cellular Origins’ automated mobile robotic platform, Constellation®, within certain parts of the company’s manufacturing processes. The collaboration will explore how automation technologies can further contribute to more efficient and scalable manufacturing processes for next-generation cell therapies.

“Following the first cell therapy approvals in 2017, there has been widespread success in treating blood cancers, while progress in solid tumors has been more limited. Immatics is now working to advance clinically validated approaches that could expand treatment options for these,” said Edwin Stone, PhD, CEO, Cellular Origins. “Current manual manufacturing methods can limit the number of patients who are able to access approved therapies,” he added.

“Effective cell therapies for solid-tumor patients is one of the most exciting developments in our field but will need the manufacturing challenges to be addressed to deliver on its potential. Our partnership with Immatics aims to support the scalable and cost-effective manufacturing of their therapies so that more patients could potentially benefit.”

“Immatics has generated extensive data demonstrating the potential of precision targeting PRAME, a target expressed in more than 50 cancers,” noted Ali Mohamed, PhD, senior vice president of CMC, Immatics. “As we continue to advance our programs, it is important that we also develop manufacturing capabilities that can support future scale. We are pleased to collaborate with Cellular Origins to explore how the Constellation platform and our integrated manufacturing processes could support the scalable production of our therapies as we move toward potential approvals.”

 

 

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Seaport’s IPO adventure, obesity pill battles, and Makary’s troubles

On this week’s episode of “The Readout LOUD,” we chat with Seaport Therapeutics CEO Daphne Zohar, fresh off the biotech’s successful IPO. Plus, Elaine, Allison, and Adam chat about this week’s notable news, including the obesity pill battle between Eli Lilly and Novo Nordisk, a Phase 3 study win for Cytokinetics, and FDA Commissioner Marty Makary’s White House troubles. 

Oh, by the way, this is the 400th episode of your favorite biotech podcast. 

Read the rest…

STAT+: Color me skeptical: Drinking gold is not an ALS cure

This is the online version of Adam’s Biotech Scorecard, a subscriber-only newsletter. STAT+ subscribers can sign up here to get it delivered to their inbox.

It’s been a while since I wrote a “Mean Adam” newsletter.

The biotech company Clene is developing a treatment for ALS called CNM-Au8 that it describes as a “highly concentrated aqueous suspension of catalytically-active, clean-surfaced, faceted gold nanocrystals.”

Allow me to translate: The Clene “drug” is gold microdust suspended in water.

Continue to STAT+ to read the full story…

Bayer to Acquire Perfuse for up to $2.45B, Seeing Ophthalmology Opportunity

Bayer has agreed to acquire Perfuse Therapeutics for up to $2.45 billion, the companies said, in a deal designed to broaden the buyer’s ophthalmology pipeline with Perfuse’s sole pipeline drug and two clinical phase programs for eye disorders.

Perfuse’s PER-001 is a small molecule endothelin receptor antagonist being developed for the treatment of ophthalmic diseases. Two of PER-001’s four programs are in Phase II development: One designed to treat open-angle glaucoma by improving the visual field for patients, and the other designed to treat diabetic retinopathy (DR) by improving contrast sensitivity and reducing ischemia in patients with the disorder.

Last year, Perfuse announced positive results from two Phase II clinical trials evaluating PER-001.

One was a Phase IIa trial (NCT05822245) assessing PER-001 in glaucoma, which showed that six months after a single intravitreal administration of PER-00, added to existing standard-of-care intraocular pressure (IOP)-reducing therapies, 22.2% of low-dose and 37.5% of high-dose patients experienced ≥7 decibel (dB) improvement in a pre-defined retina region of minimal five test points compared to 0% in control in six months.

The improvement was 8–14x better than the natural history of disease (2.7%) with currently available treatments, Perfuse said at the time.

In the other Phase IIa trial (NCT06003751), which focused on DR, patients showed a mean of +0.9 dB improvement in low luminance contrast sensitivity in the high-dose group and +0.65 dB in the low-dose group across multiple frequencies measured at week 20. In contrast, a mean of -2.1 dB worsening occurred in the control group over the same period.

The low luminance, low contrast visual acuity was better by a mean difference of 5.5 and 5.1 letters from baseline in low- and high-dose groups compared to control measured at week 20, Perfuse said at the time.

PER-001 is also in preclinical development for dry age-related macular degeneration (AMD)/geographic atrophy, as well as for retinal vein occlusion.

“We are excited by the work of the team at Perfuse Therapeutics and encouraged by the potential of PER-001,” Juergen Eckhardt, MD, head of business development and licensing at Bayer Pharmaceuticals, said in a statement. “With this acquisition, we are complementing our expertise in ophthalmology and our pipeline, reinforcing our commitment to developing urgently needed therapies for patients.”

Looking beyond Eylea®

Bayer’s ophthalmology pipeline has long been dominated by the blockbuster drug Eylea® (aflibercept), co-marketed with Regeneron Pharmaceuticals and initially approved in 2011. However, Eylea is close to losing exclusivity for key U.S. patents: According to Regeneron’s Form 10-K annual report for 2024, patents for Eylea expire between 2027 and 2039, starting with four formulation patents expiring on June 14, 2027. Patents for the higher-dose version, Eylea HD®, expire between 2027 and 2032, starting with two formulation patents expiring on June 14, 2027.

Last year, Eylea and Eylea HD saw their sales slip in the mid-teens, generating a total combined $8.04 billion in revenue, consisting of $4.385 billion in U.S. net sales for Regeneron and €3.11 billion in ex-U.S. sales for Bayer (about $3.655 billion today, up from the $3.506 billion reported in January).

During the first quarter of this year, Regeneron reported $941 million in U.S. sales, down 10% from a year ago; Bayer plans to report Q1 sales on May 12.

PER-001 is an intravitreal bio-erodible implant administered into the vitreous cavity of the eye using a single-use, 25-gauge applicator and designed to provide a sustained release of the drug, allowing for a convenient dosing regimen, according to Perfuse and Bayer.

Bayer has agreed to pay $300 million upfront for Perfuse, which is headquartered in San Francisco with R&D facilities in Durham, NC. The remaining up to $2.15 billion in deal value hinges on Bayer achieving development, regulatory, and commercial milestones.

The acquisition deal is subject to approval by Perfuse shareholders and antitrust clearances.

“I’m incredibly proud of what the Perfuse team has accomplished and deeply thankful to all our investors and collaborators,” stated Sevgi Gurkan, MD, Perfuse’s founder and CEO. “Bayer’s vision aligns closely with ours, and they have the scale and global resources to unlock the full potential of PER-001 to change the trajectory of human blindness. We are very excited to see our mission continue with even greater momentum.”

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From Discovery to GMP: Building Scalable Cell Therapy Manufacturing

From Discovery to GMP: Building Scalable Cell Therapy Manufacturing eBook

Over the past decade, our industry has witnessed the promise of cell and gene therapies. Patients with rare diseases or hard-to-treat diagnoses now have treatment options harnessing human cells and genes to alter disease. The accessibility of these therapies remains constrained not by what’s biologically possible, but how they are designed and manufactured.

The field has reached an inflection point. We’ve demonstrated the scientific foundation and its curative potential. To make advanced therapies sustainable as a pillar of medicine, we must make them more accessible. The companies that will define cell and gene therapy’s future will be those who can eliminate the distance between top science and efficient manufacturing.

This eBook brings together perspectives from Genetic Engineering News and ElevateBio to examine both the technical and operational realities shaping cell therapy today. From emerging innovations to persistent manufacturing challenges, the goal is to connect scientific progress with the systems required to scale it.

Traditional drug development has relied on siloed pathways, where therapeutics are designed and developed by one team and then manufactured by another. This approach is especially challenging in cell therapy, often leading to delays, setbacks, or outright failures. ElevateBio was built differently. Therapeutic design, development, and manufacturing operate as an integrated ecosystem, enabling tighter coordination and faster iteration.

The future of cell therapy depends on therapies designed with manufacturability in mind from the start. Process development, analytical strategy, and quality considerations must be embedded early, allowing manufacturing insights to inform development decisions in real time. This includes optimizing constructs, delivery systems, and processes to ensure scalability, reproducibility, and readiness for GMP production.

Looking beyond the science, a sustainable cell therapy ecosystem requires more than better therapeutics. It requires expanded treatment infrastructure, new commercial models, and systems capable of supporting broader patient access. But that ecosystem cannot scale on unreliable manufacturing.

As cell therapies expand into larger patient populations and new indications, the need for manufacturing designed for reliability and scale from day one becomes more urgent. The therapies being developed today have the potential to transform millions of lives—but only if the systems supporting them are built to deliver at scale.

Michael Paglia, Chief Technology Officer, ElevateBio

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