Penn researchers identify immune protein GPNMB as potential target to slow Parkinson’s-related pathology spread

Researchers at the Perelman School of Medicine at the University of Pennsylvania report that a protein called glycoprotein nonmetastatic melanoma B (GPNMB) may help drive the cell-to-cell spread of Parkinson’s-related alpha-synuclein pathology in lab models. In cultured-neuron experiments, antibodies designed to block GPNMB reduced the propagation of the toxic process, according to a study the team says was published in Neuron.

Researchers at the Perelman School of Medicine at the University of Pennsylvania say they have identified GPNMB—short for glycoprotein nonmetastatic melanoma B—as an immune-related protein involved in the progression of Parkinson’s disease.

According to Penn Medicine and a research summary distributed by ScienceDaily, the team found that microglia—the brain’s resident immune cells—produce increased amounts of GPNMB when they are near injured or dying neurons. Enzymes can then cleave part of the protein from the cell surface, allowing a soluble form of GPNMB to move between cells.

The researchers propose that this contributes to a self-reinforcing cycle in which alpha-synuclein clumps damage neurons, prompting microglia to release more GPNMB, which in turn enhances the spread of alpha-synuclein pathology. In preclinical laboratory experiments using cultured neurons, the team reported that antibodies designed to block GPNMB prevented alpha-synuclein pathology from spreading from one cell to another.

The Penn Medicine release also describes an analysis of 1,675 human brains from the Penn Brain Bank, reporting that genetic variants associated with higher GPNMB production were linked with more extensive alpha-synuclein pathology, and that elevated GPNMB was not associated with markers tied to other neurodegenerative diseases such as Alzheimer’s.

The researchers emphasized that the findings are preliminary and would require additional work before any potential therapy could be tested in people.

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Microscopic illustration of neurons showing proteins helping misfolded alpha-synuclein enter brain cells in Parkinson's research
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Yale study identifies two neuron-surface proteins that help misfolded alpha-synuclein enter brain cells

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Researchers at Yale School of Medicine say they have identified two proteins on the surface of neurons that help shuttle misfolded alpha-synuclein—a key protein implicated in Parkinson’s disease—into healthy cells, a finding that could point to new strategies aimed at slowing progression.

Researchers at Cold Spring Harbor Laboratory have found that blocking the protein PTP1B improves memory and boosts plaque clearance in mouse models of Alzheimer's disease. The discovery links the protein to brain immune function and metabolic risks like diabetes and obesity. The team aims to develop inhibitors for potential human treatments.

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Penn State researchers have found that a lattice-like structure inside neurons acts as a gatekeeper controlling what cells absorb. When the structure weakens, neurons take in more harmful proteins linked to Alzheimer's disease. Stabilizing it could lead to new treatment strategies.

A protein known as SORLA can reduce the toxic effects of tau tangles linked to Alzheimer’s disease. Researchers at Sanford Burnham Prebys showed that higher levels of the protein limited brain atrophy and preserved neuron connections in mice. The findings were published July 17 in Science Advances.

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Researchers at the Indiana University School of Medicine have identified the enzyme IDOL as a potential new target for treating Alzheimer's disease. Laboratory studies showed that removing the enzyme from neurons reduced amyloid plaques and improved brain cell communication.

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