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Fur Real: Biotech Startup Eliminates Major Dog Allergen in Beagle Pups Using CRISPR
Researchers at Kindred Companion Sciences, a New York-based start-up company, have successfully used CRISPR-Cas9 gene editing to breed dogs lacking the primary protein responsible for human dog allergies.
The study, published online in The CRISPR Journal (a sister journal to GEN), details the engineering and birth of a pair of healthy beagle puppies, Alfie and Bailey. The puppies represent a key first step towards addressing canine allergenicity and mark potentially a significant advance in veterinary biotechnology. The CRISPR Journal article is entitled: “Targeted Genetic Knockout of Can f 1, the Major Allergen in Dogs.”
About one in seven people (15 percent of the world population) experience allergies to dogs, resulting in allergic rhinitis and asthma. Among them is Canadian geneticist Matt Walker, PhD, CEO of Kindred Companion Sciences and lead author of the new study.

“I’ve been allergic to dogs my whole life,” Walker told GEN in an interview. Proximity to dogs results in skin rashes, sneezing, and itchy eyes. The symptoms were so bad that Walker’s family could not own a dog until he left for university, when it finally got a goldendoodle. Although the breed is generally considered hypoallergenic, Walker still suffered allergic reactions when he returned home.
Years later, Walker was working on gene editing in the Columbia University lab of the late Nobel laureate, Martin Chalfie, PhD, when the family dog died. “That made me question this imprecise and ineffective way that we breed dogs for certain traits,” Walker recalled. “I wondered if we could more directly address the problem of allergies by targeting the allergen at its biological source.”
Targeting Can f 1
The chief allergen in dogs is a small lipocalin protein called Can f 1. The protein is secreted from the tongue tissue into saliva as well as some glands in the skin, where it’s deposited into dander. Researchers had previously shown that knocking out the homologous gene in mice had no detrimental effect on the health and viability of the animals. That gave Walker and colleagues confidence that the gene could be safely knocked out in dogs.
Working with canine primary fibroblasts, Walker used CRISPR to introduce a single-base insertion in exon 1 of the Can f 1 gene. The resulting frameshift mutation disrupted production of the corresponding protein. (The team performed whole-genome sequencing to establish that no off-target mutations or large-scale chromosomal rearrangements occurred.)
“We didn’t introduce any foreign DNA,” Walker said. “This type of genetic change occurs naturally in dogs. All we did was direct it at this specific site.”
Those gene-edited cells were next used as nuclear donors for somatic cell nuclear transfer. The resulting embryos were transferred to a surrogate beagle, leading to the healthy births of Alfie and Bailey, genetically identical twins, in September 2024.
Western blot analysis of saliva and dander extracts from the two pups failed to detect any residual Can f 1 protein, while high levels were present in poodle and goldendoodle controls. Walker’s group also performed skin prick testing: while the sensitized subject reacted strongly to extracts from wild-type beagles and poodles, there was no response to extracts from Alfie or Bailey.
“When I had no reaction to Bailey after she came home with us, my immediate reaction was skepticism,” Walker recalled. “What if my allergies have just gone away? What if I’m not allergic to puppies? So, I called some friends in Brooklyn and spent some time with their dog and confirmed that my allergies were still roaring.”
In the paper, the authors write: “These findings demonstrate that targeted genetic knockout of the major dog allergen is compatible with canine development and can abolish the IgE-mediated allergic response, supporting the feasibility of a gene-based approach to reducing canine allergenicity.”
A key concern in animal bioengineering is whether the removal of a physiologically relevant protein will impair the animal’s health. However, Alfie and Bailey, now almost two years old, have shown normal physical development, steady growth, and no apparent health or behavioral abnormalities. The study supports the notion that Can f 1 is biologically non-essential for the host dog, despite its high immunological impact on humans.
Interestingly, the Can f 1 allergen in dogs is unrelated to the major allergen found in cats. Following a 2022 report in The CRISPR Journal authored by Nicole Brackett and colleagues that demonstrated the feasibility of using CRISPR to edit the gene encoding the Fel d 1 allergen, researchers in South Korea engineered the first gene-edited hypoallergenic cats in 2024.
Kindred spirit
Kindred Companion Sciences was originally named Can9 Bioengineering, but Walker told GEN that the name—a play on both ‘canine’ and Cas9—proved too hard for people to pronounce. Walker says that starting a company is not unlike finishing a PhD, which he did at Columbia last year. “Both of these things come down to solving problems in imaginative ways and I definitely learned how to do that during grad school!”
While Bailey, adopted by Walker, enjoys life on the Upper West Side of Manhattan, Alfie lives with Kindred Companion’s other co-founder, Nick Gavin, in Florida. Walker and Gavin originally met when they were students at Harvard; Walker is the sole employee of the company. He makes use of “an awesome co-working wet lab facility in Harlem” near Columbia, where numerous young startups share wet lab space. “We each have our own small bench. It’s pretty scrappy, but it’s a wonderful community.”
Walker and his colleagues note in the paper that their research represents a “conceptual departure from conventional allergy therapeutics that primarily act by modulating the patient’s immune response.” Walker hopes to establish a genetic platform for future efforts that could target a number of secondary dog allergens, potentially opening the door for a new generation of allergy-safe companion and service animals.
“We’re going to be tackling other breeds and hopefully applying our work to service animals. We’re going through the regulatory process,” he said. Genome-edited organisms are regulated by the U.S. Food and Drug Administration, as Walker explains it, “to make sure the health and safety of the animals are not affected.” Eventually, Walker hopes to breed hypoallergenic animals for several dog breeds that are not traditionally hypoallergenic.
I asked Walker via Zoom how it feels to finally have a dog curled up sleeping at his feet. “It’s amazing! She’s totally changed my life!”
The post Fur Real: Biotech Startup Eliminates Major Dog Allergen in Beagle Pups Using CRISPR appeared first on GEN – Genetic Engineering and Biotechnology News.
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Takeda approval ushers in new wave of sleep drugs

An FDA nod mostly clears the way for Orzeyful to enter, by Wall Street estimates, a multibillion-dollar market for drugs that boost “orexin” proteins.

An FDA nod mostly clears the way for Orzeyful to enter, by Wall Street estimates, a multibillion-dollar market for drugs that boost “orexin” proteins.
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Tau Protein Linked to Mitochondrial Reverse Electron Transport in Preclinical Models
Studies by researchers at Stanford University School of Medicine and at the University of California, San Francisco, have found that the protein tau, which is implicated in neurodegenerative disorders including Alzheimer’s disease, may be linked to these such disorders in a way that differs greatly from the pathological pathway usually ascribed to it.
Hyperphosphorylation and aggregation of tau are hallmarks of primary and secondary tauopathies including frontotemporal dementia (FTD) and AD, and potentially also Huntington’s disease and Parkinson’s disease. Such disorders also share another common pathology, which is deteriorating performance of the cell’s mitochondria. The powerhouses may number in the dozens or in the tens of thousands within a single cell, depending on the cell type’s energy needs. Nerve cells have especially high mitochondria demand.
To date the connection between tau and mitochondrial pathologies has been unclear. Working in cells and in preclinical animal models, the Stanford and UCSF scientists have now shown that phosphorylated tau can enter mitochondria and interfere with the electron transport chain, initiating a vicious cycle of pathological events and triggering reverse electron transport (RET) and the detriments that ensue.
“This is the first demonstration of exactly what tau does inside mitochondria,” said Bingwei Lu, PhD, Stanford professor of pathology, “Our discovery of a whole new mechanism driving tauopathies renders these disorders amenable to new therapeutic interventions.” Lu is senior author of the researchers’ published paper in Neuron, titled “Tau-induced mitochondrial reverse electron transport drives neurodegeneration,” in which they concluded “Our results suggest that RET may serve as a common pathogenic mechanism linking tau abnormalities to mitochondrial dysfunction across diseases.”
Tau is a soluble protein enriched in neuronal axons but is also found in neuronal dendrites, cell bodies, and non-neuronal cells, the authors explained in their report. Tau is also increasingly viewed as one of the strongest instigators of Alzheimer’s disease. The appearance of telltale forms of the protein in cerebrospinal fluid or in the bloodstream strongly predicts impending Alzheimer’s symptoms. Neuroimaging studies and postmortem inspections indicate the presence of neurofibrillary tangles—long filaments largely composed of tau—inside Alzheimer’s patients’ nerve cells.
Neurofibrillary tangles and other aspects of tau’s misbehavior—notably, a tendency to rack up chemical modifications that shift that protein’s disposition—have been reported in Parkinson’s disease and Huntington’s diseases and in other tauopathies such as frontotemporal dementia and progressive supranuclear palsy. “Tau is phosphorylated at many sites under normal conditions but becomes hyperphosphorylated in disease,” the team also commented.
Tauopathies share another common pathology, which is deteriorating mitochondrial performance. “Mitochondrial dysfunction is also a common feature of tauopathies,” the investigators stated. “The mechanistic link between tau abnormalities and mitochondrial dysfunction and its relationship to the physiological function of tau, however, is unclear.”
In its healthier manifestation, tau is believed to play a role in stabilizing microtubules, skeletal structures in nerve cells that are critical to these cells’ proper operation. Tau molecules do indeed spend some of their time sitting on microtubules, straddling those structures’ identical subunits. So, not unreasonably, the consensus is that tau’s perch on microtubules helps keep them from falling apart.
The newly discovered pathological pathway is entirely independent of both neurofibrillary tangle formation and microtubule instability. Instead, it involves a switch in the directionality of mitochondria’s energy-production line, with a resulting disruption of mitochondria’s primary function, that being the conversion of calories from glucose or fat to energy by the electron-transport chain. This multiple-component complex passes electrons from one to the next of its components, the last of which converts a precursor molecule into ATP, the cell’s universal energy currency.
The new study shows that when the hyperphosphorylated tau molecule interacts with a key mitochondrial component it jams up the electron transport conveyor belt, causing electrons to flow backward. Aptly named reverse electron transport (RET), this snarl produces large amounts of reactive oxygen species (ROS), with accompanying inflammation and damage to proteins.
Reverse electron transport is an area of intense recent interest in biology. Although it was first discovered in the 1960s, there’s still no clear evidence that it serves any constructive physiological role. “In healthy cells, very little reverse electron transport is happening,” Lu said.
The new study shows that reverse electron transport is activated under stress. It may initially serve some beneficial function—for example, providing short-term adaption to that stress—but nothing like that has been proven. “Here, we demonstrate that tau regulates mitochondrial reverse electron transport (RET), which produces excess reactive oxygen species (ROS), reduces the NAD+/NADH ratio, and is activated by aging or stress,” the investigators noted.
The team carried out an extensive series of experiments in fruit flies, mice, human brain tissue and cultured human nerve cells that in some cases contained mutated genes for tau identical to those found in tauopathy patients. They also employed lab-generated nerve cells carrying a well-studied gene duplication that promotes accelerated acquisition of Alzheimer’s disease.
Through their studies they demonstrated that reverse electron transport was occurring in animal models of tauopathy as well as in tauopathy-afflicted human brain tissues. Healthy nerve cells, largely spared of hyperphosphorylated tau’s malevolent presence, showed no sign of reverse electron transport or its downside effects.
Next, the investigators showed how reverse electron transport is activated, finding that tau molecules enter mitochondria, but only when they’re phosphorylated. There, they can bind to a component of the electron-transport chain called NDUSF3, warping that protein’s shape. When this happens, electrons drop off the conveyor belt and start flowing backward. “Mechanistically, tau enters mitochondria and directly interacts with the complex I subunit NDUFS3 to promote RET in a phosphorylation-dependent manner,” they continued. “Elevated RET further drives tau hyperphosphorylation, establishing a self-perpetuating pathological loop.”
Studies showed that genetically or pharmacologically depleting tau halted this defection. An experimental drug called CPT prevented hyperphosphorylated tau from binding to NDUSF3, blocking reverse electron transport without impairing normal electron flow. Experimental animals that were genetically altered to produce no or little tau, suffered none of the cognitive or other behavioral deficits or brain pathophysiology exhibited by tau-producing, but otherwise genetically identical animals under stress conditions. “In flies, mice, and human induced pluripotent stem cell (hiPSC)-derived neurons, tau depletion eliminates stress-induced RET and confers resilience,” the authors stated.
Deleting the gene for tau, for instance, protected fruit flies from the severe, life-shortening nervous-system damage that normally results from prolonged exposure to elevated temperatures. CPT treatment of the tau-producing normal flies not only protected them against heat stress but extended their lifespan.
The study showed equivalent findings in mic engineered to not produce tau. Cognition in these animals was protected by CPT treatment from the detrimental effect of heat stress. CPT also protected tau-producing normal mice subjected to heat stress.
Tau hyperphosphorylation proved critical for promoting reverse electron transport. Only tau molecules that had undergone particular phosphorylation events could get inside mitochondria, bind to NDUFS3, and induce reverse electron transport.
In tauopathy mice with severe cognitive deficiencies, an extended CPT regimen inhibited reverse electron transport in the brain mitochondria. This significantly improved the animals’ performance on a wide range of behavioral tests and prevented nerve-cell inflammation as well as several characteristic markers of neurodegeneration, such as diminished cortical thickness and total brain volumes.
“Crucially, therapeutic inhibition of RET mitigates tau-induced neurotoxicity in multiple models, without observable detrimental effects on normal animals,” the authors noted. “The RET inhibitor CPT effectively disrupts the pathological loop between RET and tau phosphorylation, ameliorating neurotoxicity across species. In fly and mouse models of tauopathy, CPT treatment rescues behavioral deficits, reduces neuroinflammation, and mitigates neurodegeneration.”
Reverse electron transport is a textbook example of a vicious circle, Lu said. The massive release of highly reactive chemicals dramatically boosts the odds that individual tau molecules will get hyperphosphorylated, leading to additional activation of reverse electron transport. “Once this gets started, it can become self-perpetuating,” he commented. Reverse-electron-transport inhibition holds promise as a therapeutical strategy for tauopathies and, potentially, other maladies characterized by aberrant tau phosphorylation and mitochondrial dysfunction, such as brain tumors, stroke and traumatic brain injuries, Lu suggested.
“RET regulation thus represents a previously unrecognized normal function of tau that becomes pathological in disease, providing a therapeutic target for various conditions characterized by tau abnormalities and mitochondrial dysfunction,” the authors stated in their paper. “These findings suggest that RET inhibition holds promise as a therapeutic strategy for not only tauopathies but potentially other brain diseases characterized by aberrant tau phosphorylation and mitochondrial dysfunction.”
Lu added, “The main results we observed in our animal models were also seen in patient brain tissues and in the laboratory generated nerve-cell models we derived from tauopathy-patients’ cells. This suggests that what we learned from this study is applicable to the human nervous system. In fly and mouse models of tauopathy, CPT treatment rescues behavioral deficits, reduces neuroinflammation and mitigates neurodegeneration. In hiPSC-derived neurons carrying pathogenic tau mutations, CPT protects against stress-induced cellular abnormalities.”
These are early days for this compound’s clinical development, he stated. “Much more work remains to be done before it can undergo clinical trials.” Lu is co-founder and sits on the advisory board of Cerapeut, a company that is developing CPT as a therapeutic drug for the treatment of neurodegenerative diseases.
The post Tau Protein Linked to Mitochondrial Reverse Electron Transport in Preclinical Models appeared first on GEN – Genetic Engineering and Biotechnology News.
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Erica Schwartz confirmed as next CDC director

Schwartz will step into an agency that has been without a permanent leader for almost a year amid RFK Jr.’s tumultuous tenure as HHS chief.

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