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Yale scientists identify drug target that may alleviate joint degeneration in osteoarthritis

Yale researchers have identified a drug target that may alleviate joint degeneration associated with osteoarthritis, a debilitating condition that afflicts as many as 30 million people in the United States alone, which they report on Jan. 3 in the journal Natu

Yale researchers have identified a drug target that may alleviate joint degeneration associated with osteoarthritis, a debilitating condition that afflicts as many as 30 million people in the United States alone, which they report on Jan. 3 in the journal Nature.

Pain relievers and lifestyle changes, such as exercise and reduced excess weight, have long been the therapies most commonly used to treat the joint stiffness and pain caused by degenerative disease, but there is a pressing need for therapies that can prevent joint breakdown that occurs in osteoarthritis.

It is known that specialized proteins known as sodium channels found in cell membranes produce electrical impulses in "excitable" cells within muscles, the nervous system, and the heart. And in previous research, Yale's Stephen G. Waxman identified the key role of one particular sodium channel, called Nav1.7, in the transmission of pain signals.

Now, the labs of Chuan-Ju Liu, the Charles W. Ohse Professor of Orthopedics, and Waxman, the Bridget M. Flaherty Professor of Neurology and professor of neuroscience and pharmacology, both at Yale School of Medicine, have found that the same Nav1.7 channels are also present in non-excitable cells that produce collagen and help maintain the joints in the body.

Osteoarthritis, the most common form of arthritis, is a degenerative disease caused by the breakdown of cartilage that eases friction between the joints. It occurs most commonly in the hands, hips, and knees.

In the new study, the researchers deleted Nav1.7 genes from these collagen-producing cells and significantly reduced joint damage in two osteoarthritis models in mice.

They also demonstrated that drugs used to block Nav1.7 — including carbamazepine, a sodium channel blocker currently used to treat epilepsy and trigeminal neuralgia — also provided substantial protection from joint damage in the mice.

The function of sodium channels in non-excitable cells has been a mystery. This new study provides a window on how small numbers of sodium channels can powerfully regulate the behavior of non-excitable cells." Stephen G. Waxman, Yale School of Medicine

"The findings open new avenues for disease-modifying treatments," added Wenyu Fu, a research scientist in the Liu laboratory and first author of the study.

Fu, W., et al. (2024). Nav1.7 as a chondrocyte regulator and therapeutic target for osteoarthritis. Nature. doi.org/10.1038/s41586-023-06888-7.

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Q01Can you explain what Myomaker Bio's lab-grown human muscle platform is and the challenge it aims to address in drug development?

Myomaker Bio develops three-dimensional human-derived muscle organs and complex tissue systems that can be incorporated into bespoke preclinical testing assays. These models allow pharmaceutical and biotechnology companies to study how candidate drugs interact with human muscle tissue under biologically relevant conditions. The core challenge we are addressing is the limited predictive value of many traditional preclinical models, particularly animal studies. Human-relevant tissue systems can provide earlier insight into drug safety, efficacy, and underlying mechanisms, helping to reduce risk and accelerate development timelines.

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Q02What is AHCC?

A Japanese firm, Amino Up Co., Ltd., produces a standardized extract of the mycelia of the cultured mushroom Lentinula edodes. AHCC has shown the ability to increase dendritic cell numbers in the blood, enhance virus elimination, increase influenza antibody titers post-vaccination, and reduce cancer recurrences after liver tumor resection. In the last case, its use was also associated with a reduction in cirrhosis odds compared to the group that did not take this agent. This prompted the current study, where AHCC was examined for its potential to prevent the progression of liver fibrosis by inhibiting hepatic stellate cell (HSC) activation.

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Q03What does collagen do?

Collagen helps to give strength to various structures of the body and also protects structures like the skin by preventing absorption and spreading of pathogenic substances, environmental toxins, micro - organisms and cancerous cells. Collagen protein is the cement that holds everything together. Collagen is also present in all the smooth muscle tissues, blood vessels digestive tract, heart, gallbladder, kidneys and bladder holding the cells and tissues together. Collagen is even the major component of the hair and nails.

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