{"id":"CU26426","slug":"optogenetic-platform-for--CU26426","source":{"id":"CU26426","dataset":"techtransfer","title":"Optogenetic platform for spatial and temporal control of phosphoinositide in Alzheimer's disease","description_":"<p>This technology is an optogenetic platform that enables precise control of phosphoinositide signaling to study and validate therapeutic targets for Alzheimer’s disease.</p>\r\r<h2>Unmet Need: Precise control of a signaling lipid tied to Alzheimer’s disease</h2>\r\r<p>Phosphatidylinositol-4,5-bisphosphate PI(4,5)P2 is a signaling lipid that regulates essential synaptic functions and is depleted in Alzheimer’s disease. Determining whether restoring PI(4,5)P2 can protect neuronal function and serve as a therapeutic strategy requires precise control over when and where the lipid is produced. However, existing genetic and pharmacological approaches lack the spatial and temporal precision needed to selectively manipulate phosphoinositide signaling. Therefore, there is a need for technologies that enable rapid, reversible, and localized control of phosphoinositide signaling in living systems. </p>\r\r<h2>The Technology: Light activated enzymes that build a signaling lipid on demand</h2>\r\r<p>This technology is an optogenetic system that uses blue light to precisely control production of the signaling lipid PI(4,5)P2 in living cells and brain tissue. By recruiting phosphoinositide kinases to the cell membrane in response to light, the platform enables rapid, localized and reversible production of PI(4,5)P2 with high spatial and temporal precision. The system can be delivered using gene therapy vectors and activated in vivo to study phosphoinositide signaling and evaluate therapeutic strategies for Alzheimer’s disease and other neurological disorders.</p>\r\r<p>The system has been validated in human cells and in a mouse model of Alzheimer’s disease, where light-induced PI(4,5)P2 production restored hippocampal learning and memory despite the presence of amyloid-β plaques.  </p>\r\r<h2>Applications:</h2>\r\r<ul>\r<li>Research tool for studying lipid signaling, synaptic processing, and vesicle recycling in vivo </li>\r<li>Target validation for neurodegenerative disorders</li>\r<li>Drug discovery program and screens that test lipid metabolism as therapeutic targets</li>\r</ul>\r\r<h2>Advantages:</h2>\r\r<ul>\r<li>Controls a specific signaling lipid with precise timing and location</li>\r<li>Acts quickly and reversibly, unlike genetic or drug-based perturbation</li>\r<li>Work in living brain tissues</li>\r<li>Utilizes standard viral delivery enabling a large variety of targets</li>\r</ul>\r\r<h2>Lead Inventor:</h2>\r\r<p><a href=\"https://columbianeuroresearch.org/taub/res-featured-3-2018.html\">Laura Beth McIntire, Ph.D</a></p>\r\r<h2>Related Publications:</h2>\r\r<ul>\r<li><a href=\"https://pubmed.ncbi.nlm.nih.gov/42448968/\">Costa AP, Acquarone E, Lazarian A, Herman M, Wartchow KM, Bartelo N, Dartora WJ, Krumsiek J, Li XL, Baskin JM, Arancio O, Hussaini SA, McIntire LB. “Temporal and spatial control of phosphatidylinositides using optogenetics ameliorates behavioral deficits in an Alzheimer’s disease mouse model” Commun Biol. 2026 Jul 14</a></li>\r</ul>\r\r<h2>Tech Ventures Reference:</h2>\r\r<ul>\r<li>Licensing Contact: <a href=\"mailto:techtransfer@columbia.edu\">Jerry Kokoshka</a></li>\r</ul>\r\r","tags":["Amyloid beta","Brain","Cell membrane","Gene therapy","Hippocampus","Lipid","Memory","Neurodegenerative disease","Optogenetics","Perturbation theory","Phosphatidylinositol","Phosphatidylinositol 4,5-bisphosphate","Recycling","Synapse","Synaptic vesicle"],"file_number":"CU26426","collections":[],"meta_description":"Optogenetic system precisely lights PI(4,5)P2 production in neurons, restoring function in Alzheimer's models with rapid, localized control.","apriori_judge_output":"{\"scores\":{\"novelty\":4.5,\"potential_impact\":4.5,\"readiness\":4.0,\"scalability\":3.5,\"timeliness\":4.5},\"weighted_score\":4.2,\"risks\":[\"Complexity of in vivo delivery and potential immune responses\",\"Regulatory hurdles for gene/optogenetic platforms\",\"Intellectual property landscape for optogenetic lipid control\",\"Translatability from mouse model to human disease\",\"Manufacturing and quality control for viral/vector platforms\"],\"one_sentence_take\":\"High novelty and strong translational potential with in vivo validation, but faces delivery, regulatory, and manufacturability challenges that temper scale and near-term deployment.\"}","inventors":["Artur Lazarian","Laura Beth McIntire"],"manager":"Jerry Kokoshka","depts":["Cornell Center for Technology Enterprise and Commercialization (CCTEC)","Taub Institute"],"divs":["Columbia University Medical Center (CUMC)"],"date_released":"2026-08-21"},"highlight":{},"matched_queries":null,"score":0.0}