{"id":32040,"date":"2022-12-22T01:42:35","date_gmt":"2022-12-22T02:42:35","guid":{"rendered":"https:\/\/peymantaeidi.net\/stem-cell\/?p=32040"},"modified":"2022-12-22T03:40:21","modified_gmt":"2022-12-22T03:40:21","slug":"changing-the-intrinsic-behavior-of-neurons-to-treat-neurological-conditions-like-epilepsy","status":"publish","type":"post","link":"https:\/\/peymantaeidi.net\/stem-cell\/2022\/12\/22\/changing-the-intrinsic-behavior-of-neurons-to-treat-neurological-conditions-like-epilepsy\/","title":{"rendered":"Changing the Intrinsic Behavior of Neurons To Treat Neurological Conditions Like Epilepsy"},"content":{"rendered":"<div id=\"attachment_237685\" class=\"wp-caption aligncenter\"><img loading=\"lazy\" decoding=\"async\" aria-describedby=\"caption-attachment-237685\" class=\"ezlazyload size-large wp-image-237685\" src=\"\/\/www.w3.org\/2000\/svg%22%20width=%22777%22%20height=%22583%22%3E%3C\/svg%3E\" alt=\"Changing Intrinsic Behavior of Neurons\" width=\"777\" height=\"583\" data-ezsrcset=\"https:\/\/peymantaeidi.net\/stem-cell\/wp-content\/uploads\/2022\/12\/Changing-Intrinsic-Behavior-of-Neurons-777x583-1.jpg 777w,https:\/\/peymantaeidi.net\/stem-cell\/wp-content\/uploads\/2022\/12\/Changing-Intrinsic-Behavior-of-Neurons-400x300-1.jpg 400w,https:\/\/peymantaeidi.net\/stem-cell\/wp-content\/uploads\/2022\/12\/Changing-Intrinsic-Behavior-of-Neurons-768x576-1.jpg 768w,https:\/\/peymantaeidi.net\/stem-cell\/wp-content\/uploads\/2022\/12\/Changing-Intrinsic-Behavior-of-Neurons-1536x1152-1.jpg 1536w,https:\/\/peymantaeidi.net\/stem-cell\/wp-content\/uploads\/2022\/12\/Changing-Intrinsic-Behavior-of-Neurons.jpg 2000w\" data-ezsrc=\"https:\/\/peymantaeidi.net\/stem-cell\/wp-content\/uploads\/2022\/12\/Changing-Intrinsic-Behavior-of-Neurons-777x583-1.jpg\" \/><\/p>\n<p id=\"caption-attachment-237685\" class=\"wp-caption-text\">Researchers developed a method to target specific neurons and change their excitability with light for long periods of time. Credit: Emma Hsiao\/Harvard SEAS<\/p>\n<p><span class=\"ezoic-autoinsert-video ezoic-under_first_paragraph\"><\/span><span id=\"ezoic-pub-ad-placeholder-102\" data-inserter-version=\"2\"><\/span><span class=\"ezoic-ad ezoic-at-0 box-3 box-3102 adtester-container adtester-container-102\" data-ez-name=\"scitechdaily_com-box-3\"><span id=\"div-gpt-ad-scitechdaily_com-box-3-0\" class=\"ezoic-ad\"><\/span><\/span><\/div>\n<h3>Method offers new approach to treating neurological conditions such as epilepsy.<\/h3>\n<p>A new method to target diseased neurons in the brain and change their long-term behavior using light, paving the way for potential new treatments for neurological conditions such as epilepsy and autism has been developed by researchers from the Harvard John A. Paulson School of Engineering and Applied Sciences (SEAS) and <span class=\"glossaryLink\" aria-describedby=\"tt\">MIT<\/p>\n<div class=\"glossaryItemBody\">MIT is an acronym for the Massachusetts Institute of Technology. It is a prestigious private research university in Cambridge, Massachusetts that was founded in 1861. It is organized into five Schools: architecture and planning; engineering; humanities, arts, and social sciences; management; and science. MIT&#039;s impact includes many scientific breakthroughs and technological advances. Their stated goal is to make a better world through education, research, and innovation.<\/div>\n<p>&#8221; data-gt-translate-attributes=&#8221;[{&quot;attribute&quot;:&quot;data-cmtooltip&quot;, &quot;format&quot;:&quot;html&quot;}]&#8221;&gt;MIT<\/span>.<\/p>\n<p>The research was published on December 7 in the journal <em>Science Advances<\/em>.<\/p>\n<p><span id=\"ezoic-pub-ad-placeholder-110\" data-inserter-version=\"2\"><\/span><span class=\"ezoic-ad ezoic-at-0 medrectangle-3 medrectangle-3110 adtester-container adtester-container-110\" data-ez-name=\"scitechdaily_com-medrectangle-3\"><span id=\"div-gpt-ad-scitechdaily_com-medrectangle-3-0\" class=\"ezoic-ad\"><\/span><\/span><\/p>\n<p>\u201cWe envision that this technology will provide new opportunities for high spatiotemporal resolution control of neurons for neuroscience and behavior studies and develop new treatments for neurological disorders,\u201d said Jia Liu, Assistant Professor of Bioengineering at SEAS and co-senior author of the study.<\/p>\n<p>Optogenetics, the use of light to either stimulate or inhibit neurons, has long promised to revolutionize the study and treatment of neurological conditions that are caused by the over or under excitability of neurons. However, current optogenetic techniques can only change neuronal excitability in the short-term. Once the light turns off, the neurons go back to their original behavior.<\/p>\n<p>Recent advances in nanotechnology, including the flexible, implantable nanoelectronics pioneered by Liu and his team, could potentially alter neuronal behavior in the long term, but these devices need to be implanted into the brain and can\u2019t be programmed to target specific neurons involved in disease.<\/p>\n<p><span id=\"ezoic-pub-ad-placeholder-111\" data-inserter-version=\"2\"><\/span><span class=\"ezoic-ad ezoic-at-0 medrectangle-4 medrectangle-4111 adtester-container adtester-container-111\" data-ez-name=\"scitechdaily_com-medrectangle-4\"><span id=\"div-gpt-ad-scitechdaily_com-medrectangle-4-0\" class=\"ezoic-ad\"><\/span><\/span><\/p>\n<p>A neuron\u2019s excitability is governed by two main components \u2014 its ion channel conductivity and the cell membrane\u2019s ability to store an electric charge, known as its capacitance.<\/p>\n<p>Most optogenetic techniques target ion channel conductivity, modulating the excitability of the neuron by opening or closing a specific group of channels. This approach can effectively tune the excitability of the neuron, but only transiently.<\/p>\n<p>\u201cYou can imagine a neuron as a resistor\u2013capacitor circuit and the cell membrane as a dielectric material,\u201d said Liu. \u201cJust like with any circuit, if you change the capacitance of the material \u2014 in this case the cell membrane \u2014 you can change the intrinsic excitability of the circuit in the long term, from high excitability to low excitability or vice versa.\u201d<\/p>\n<p>To change the capacitance of the cell membrane, Liu, in collaboration with Xiao Wang, the Thomas D. and Virginia Cabot Assistant Professor of Chemistry at MIT, used light-sensitive enzymes that can trigger the formation of either insulating or conductive polymers on the surface of cell membranes.<\/p>\n<p><span id=\"ezoic-pub-ad-placeholder-112\" data-inserter-version=\"2\"><\/span><span class=\"ezoic-ad ezoic-at-0 box-4 box-4112 adtester-container adtester-container-112 ezoic-ad-adaptive\" data-ez-name=\"scitechdaily_com-box-4\"><span class=\"ezoic-ad box-4 box-4-multi-112 adtester-container adtester-container-112\" data-ez-name=\"scitechdaily_com-box-4\"><span id=\"div-gpt-ad-scitechdaily_com-box-4-0\" class=\"ezoic-ad\"><\/span><\/span><span class=\"ezoic-ad box-4 box-4-multi-112 adtester-container adtester-container-112\" data-ez-name=\"scitechdaily_com-box-4\"><span id=\"div-gpt-ad-scitechdaily_com-box-4-0_1\" class=\"ezoic-ad\"><\/span><\/span>.box-4-multi-112{border:none!important;display:block!important;float:none!important;line-height:0;margin-bottom:15px!important;margin-left:auto!important;margin-right:auto!important;margin-top:15px!important;max-width:100%!important;min-height:250px;min-width:250px;padding:0;text-align:center!important}<\/span><\/p>\n<p>The enzymes can be engineered to target the cell membranes of specific neurons. Once the enzymes attached to the specified membrane, the researchers used blue wavelength light to illuminate the neurons, triggering the generation of either insulating or conductive coatings on the membrane within minutes. They demonstrated that neurons with insulating polymer coatings became more excitable and those with conductive polymer coatings became less excitable.<\/p>\n<p>The researchers found that they could tune the excitability by tuning the exposure to light \u2014the longer the neurons were exposed to light, the more insulating or conductive the coatings became. The research team also showed that the changes in excitability lasted for up to three days \u2014 as long as they could keep the neurons alive in a petri dish.<\/p>\n<p>Next, the team aims to test the approach using slices of brain tissue and in animals.<\/p>\n<p>\u201cThe overarching goal of this work is to enable paradigm-shift approaches for the integration of functional materials, structures, and devices into living nervous systems with subcellular- and cell-type-specificity, which will allow for the precise manipulation of subcellular electrochemical properties, remodeling the excitability of neurons in living nervous systems,\u201d said Liu.<\/p>\n<p><span id=\"ezoic-pub-ad-placeholder-113\" data-inserter-version=\"2\"><\/span><span class=\"ezoic-ad ezoic-at-0 banner-1 banner-1113 adtester-container adtester-container-113 ezoic-ad-adaptive\" data-ez-name=\"scitechdaily_com-banner-1\"><span class=\"ezoic-ad banner-1 banner-1-multi-113 adtester-container adtester-container-113\" data-ez-name=\"scitechdaily_com-banner-1\"><span id=\"div-gpt-ad-scitechdaily_com-banner-1-0\" class=\"ezoic-ad\"><\/span><\/span><span class=\"ezoic-ad banner-1 banner-1-multi-113 adtester-container adtester-container-113\" data-ez-name=\"scitechdaily_com-banner-1\"><span id=\"div-gpt-ad-scitechdaily_com-banner-1-0_1\" class=\"ezoic-ad\"><\/span><\/span>.banner-1-multi-113{border:none!important;display:block!important;float:none!important;line-height:0;margin-bottom:15px!important;margin-left:auto!important;margin-right:auto!important;margin-top:15px!important;max-width:100%!important;min-height:250px;min-width:250px;padding:0;text-align:center!important}<\/span><\/p>\n<p>Reference: \u201cOptogenetic polymerization and assembly of electrically functional polymers for modulation of single-neuron excitability\u201d by Chanan D. Sessler, Yiming Zhou, Wenbo Wang, Nolan D. Hartley, Zhanyan Fu, David Graykowski, Morgan Sheng, Xiao Wang and Jia Liu, 7 December 2022, <em>Science Advances<\/em>.<br \/><a href=\"https:\/\/doi.org\/10.1126\/sciadv.ade1136\">DOI: 10.1126\/sciadv.ade1136<\/a><\/p>\n<p>The research was co-authored by Chanan D. Sessler, Yiming Zhou, Wenbo Wang, Nolan D. Hartley, Zhanyan Fu, David Graykowski and Morgan Sheng.<\/p>\n<p>It was supported in part by the Air Force Office of Scientific Research Young Investigator Program under grant FA9550-22-1-0228, the National Science Foundation through the Harvard University Materials Research Science and Engineering Center under grant DMR-2011754, and the Harvard Dean\u2019s Competitive Fund for Promising Scholarship.<\/p>\n<p><span id=\"ezoic-pub-ad-placeholder-187\" class=\"ezoic-adpicker-ad\"><\/span><span class=\"ezoic-ad ezoic-at-0 large-mobile-banner-1 large-mobile-banner-1187 adtester-container adtester-container-187 ezoic-ad-adaptive\" data-ez-name=\"scitechdaily_com-large-mobile-banner-1\"><span class=\"ezoic-ad large-mobile-banner-1 large-mobile-banner-1-multi-187 adtester-container adtester-container-187\" data-ez-name=\"scitechdaily_com-large-mobile-banner-1\"><span id=\"div-gpt-ad-scitechdaily_com-large-mobile-banner-1-0\" class=\"ezoic-ad\"><\/span><\/span><span class=\"ezoic-ad large-mobile-banner-1 large-mobile-banner-1-multi-187 adtester-container adtester-container-187\" data-ez-name=\"scitechdaily_com-large-mobile-banner-1\"><span id=\"div-gpt-ad-scitechdaily_com-large-mobile-banner-1-0_1\" class=\"ezoic-ad\"><\/span><\/span>.large-mobile-banner-1-multi-187{border:none!important;display:block!important;float:none!important;line-height:0;margin-bottom:15px!important;margin-left:auto!important;margin-right:auto!important;margin-top:15px!important;max-width:100%!important;min-height:250px;min-width:250px;padding:0;text-align:center!important}<\/span><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Researchers developed a method to target specific neurons and change their excitability with light for<\/p>\n","protected":false},"author":1,"featured_media":32042,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[1],"tags":[],"_links":{"self":[{"href":"https:\/\/peymantaeidi.net\/stem-cell\/wp-json\/wp\/v2\/posts\/32040"}],"collection":[{"href":"https:\/\/peymantaeidi.net\/stem-cell\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/peymantaeidi.net\/stem-cell\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/peymantaeidi.net\/stem-cell\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/peymantaeidi.net\/stem-cell\/wp-json\/wp\/v2\/comments?post=32040"}],"version-history":[{"count":3,"href":"https:\/\/peymantaeidi.net\/stem-cell\/wp-json\/wp\/v2\/posts\/32040\/revisions"}],"predecessor-version":[{"id":32048,"href":"https:\/\/peymantaeidi.net\/stem-cell\/wp-json\/wp\/v2\/posts\/32040\/revisions\/32048"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/peymantaeidi.net\/stem-cell\/wp-json\/wp\/v2\/media\/32042"}],"wp:attachment":[{"href":"https:\/\/peymantaeidi.net\/stem-cell\/wp-json\/wp\/v2\/media?parent=32040"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/peymantaeidi.net\/stem-cell\/wp-json\/wp\/v2\/categories?post=32040"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/peymantaeidi.net\/stem-cell\/wp-json\/wp\/v2\/tags?post=32040"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}