Misfolded insulin may drive diabetes progression

A study published in June 2026 shows that misfolded proinsulin proteins can stress insulin-producing cells and reduce insulin output. Researchers identified key helper proteins that support proper folding and may offer a new treatment approach.

Researchers from Sanford Burnham Prebys Medical Discovery Institute and the University of Michigan published their findings on June 1, 2026, in the Proceedings of the National Academy of Sciences. The work details how beta cells in the pancreas rely on binding immunoglobulin protein, or BiP, and its cochaperone p58IPK to fold proinsulin correctly.

When p58IPK was removed from cell lines and mice, misfolded proinsulin built up and insulin production fell. Restoring p58IPK improved folding only when BiP was also present at normal levels.

"Like a single tennis player trying to play a doubles match, we found that BiP cannot just go it alone," said lead author Insook Jang. Senior author Randal J. Kaufman noted that strengthening this system could protect cells early in diabetes.

Current treatments do not target protein folding. The study suggests that supporting BiP and its partners might preserve beta cell function, though further research is needed.

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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.

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Researchers at the Weizmann Institute of Science have identified a protein that influences how cells manage fat and energy. Disabling the protein, known as MTCH2 or Mitch, increased fat consumption and reduced the formation of new fat cells in human cell experiments. The work builds on earlier findings in mice.

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Scientists at the University of Southern California have found experimental compounds that may reduce harmful brain inflammation associated with Alzheimer’s disease. The work focuses on the enzyme cPLA2 and people who carry the high-risk APOE4 gene.

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