{"id":12051,"date":"2020-12-23T11:11:39","date_gmt":"2020-12-23T13:11:39","guid":{"rendered":"https:\/\/mindthegraph.com\/blog\/?p=12051"},"modified":"2023-01-05T14:32:04","modified_gmt":"2023-01-05T17:32:04","slug":"nerve-impulses-the-action-potential","status":"publish","type":"post","link":"https:\/\/mindthegraph.com\/blog\/fi\/hermoimpulssit-toimintapotentiaali\/","title":{"rendered":"Hermoimpulssit OSA 1 - Toimintapotentiaali"},"content":{"rendered":"<p>Jotta ymm\u00e4rt\u00e4isimme, miten neuroni toimii, meid\u00e4n on tarkasteltava kahta k\u00e4sitett\u00e4. Ensimm\u00e4inen liittyy siihen, mit\u00e4 neuronin sis\u00e4ll\u00e4 tapahtuu, kun informaatio kulkee eteenp\u00e4in - toimintapotentiaali - ja toinen siihen, miten informaatio siirtyy yhdest\u00e4 solusta toiseen - synapsi. N\u00e4iden kahden prosessin avulla hermoston solut kykenev\u00e4t kuljettamaan monimutkaista tietoa koko kehossa siirt\u00e4en sit\u00e4 hermosolusta toiseen, kunnes se lopulta saavuttaa kohdesolun. T\u00e4ss\u00e4 artikkelissa keskustelemme ensimm\u00e4isest\u00e4 k\u00e4sitteest\u00e4, joka on nimelt\u00e4\u00e4n <strong>toimintapotentiaali<\/strong>.&nbsp;&nbsp;&nbsp;<\/p>\n\n\n\n<p>Hermoimpulssi on s\u00e4hk\u00f6kemiallinen signaali; se on t\u00e4rkein mekanismi, jota k\u00e4ytet\u00e4\u00e4n tiedon siirt\u00e4miseen hermosolun sis\u00e4ll\u00e4. Joidenkin hermosolujen dendriitit havaitsevat ja vastaanottavat impulssin edelliselt\u00e4 solulta, hermoimpulssi kulkee pitkin kulkevaa hermosolua. <strong>dendriitit <\/strong>osoitteeseen <strong>ydin <\/strong>kuin <strong>aksoni<\/strong>ja lopuksi <strong>aksonin p\u00e4\u00e4te<\/strong> kun impulssi siirtyy seuraavalle neuronille. T\u00e4m\u00e4 prosessi jatkuu<strong> <\/strong>toistuvasti, kunnes se saavuttaa kohdesolun.<\/p>\n\n\n<div class=\"wp-block-image\">\n<figure class=\"aligncenter size-large\"><a href=\"https:\/\/mindthegraph.com\/blog\/wp-content\/uploads\/2020\/12\/unnamed.png\"><img decoding=\"async\" loading=\"lazy\" width=\"512\" height=\"205\" src=\"https:\/\/mindthegraph.com\/blog\/wp-content\/uploads\/2020\/12\/unnamed.png\" alt=\"\" class=\"wp-image-12053\" srcset=\"https:\/\/mindthegraph.com\/blog\/wp-content\/uploads\/2020\/12\/unnamed.png 512w, https:\/\/mindthegraph.com\/blog\/wp-content\/uploads\/2020\/12\/unnamed-300x120.png 300w\" sizes=\"(max-width: 512px) 100vw, 512px\" \/><\/a><\/figure><\/div>\n\n\n<p>S\u00e4hk\u00f6kemiallinen signaali syntyy, kun ionit liikkuvat hermosolun plasmakalvon sis\u00e4- ja ulkopuolisen osan v\u00e4lill\u00e4. Ionit siirtyv\u00e4t ulkopuolelta sis\u00e4puolelle, jolloin kalvossa syntyy potentiaaliero. \"Silta\", jota n\u00e4m\u00e4 ionit k\u00e4ytt\u00e4v\u00e4t siirty\u00e4kseen solun sis\u00e4lle, on transmembraaniproteiini nimelt\u00e4 <strong>j\u00e4nniteohjatut ionikanavat<\/strong>.&nbsp;&nbsp;&nbsp;<\/p>\n\n\n\n<p>N\u00e4it\u00e4 j\u00e4nnitekanavia ohjataan s\u00e4hk\u00f6j\u00e4nnitteill\u00e4 er\u00e4\u00e4nlaisena vasteena s\u00e4hk\u00f6isiin \u00e4rsykkeisiin, toisin sanoen n\u00e4m\u00e4 kanavat eiv\u00e4t ole aina avoimia ionien kulkemiselle, vaan ne avautuvat ja sulkeutuvat vain joidenkin s\u00e4hk\u00f6isten j\u00e4nnite\u00e4rsykkeiden vaikutuksesta.<\/p>\n\n\n<div class=\"wp-block-image\">\n<figure class=\"aligncenter size-large\"><a href=\"https:\/\/mindthegraph.com\/blog\/wp-content\/uploads\/2020\/12\/sodium-potassium-channel.png\"><img decoding=\"async\" loading=\"lazy\" width=\"654\" height=\"491\" src=\"https:\/\/mindthegraph.com\/blog\/wp-content\/uploads\/2020\/12\/sodium-potassium-channel.png\" alt=\"\" class=\"wp-image-12052\" srcset=\"https:\/\/mindthegraph.com\/blog\/wp-content\/uploads\/2020\/12\/sodium-potassium-channel.png 654w, https:\/\/mindthegraph.com\/blog\/wp-content\/uploads\/2020\/12\/sodium-potassium-channel-300x225.png 300w\" sizes=\"(max-width: 654px) 100vw, 654px\" \/><\/a><\/figure><\/div>\n\n\n<p>Kun soluun ei kohdistu \u00e4rsykkeit\u00e4, kun kalvo on levossa, hermosolun sis\u00e4- ja ulkopuolisten osien v\u00e4lill\u00e4 s\u00e4ilyy potentiaaliero. Lepotilassa kalvon potentiaali on -70mV, eli negatiivinen potentiaali, kun taas kalvon ulkopuolella on positiivinen potentiaali. T\u00e4t\u00e4 potentiaalieroa kutsutaan <strong>kalvon lepopotentiaali, <\/strong>ja sit\u00e4 yll\u00e4pit\u00e4v\u00e4t p\u00e4\u00e4asiassa natrium- ja kaliumionit natrium-kaliumpumpun kautta.<\/p>\n\n\n\n<p>S\u00e4hk\u00f6isen j\u00e4nnite\u00e4rsykkeen vaikutuksesta kalvon potentiaaliero alkaa k\u00e4\u00e4nty\u00e4, natriumkanavat avautuvat, jolloin monet natriumionit p\u00e4\u00e4sev\u00e4t solun sis\u00e4lle, jolloin kalvo k\u00e4\u00e4ntyy hetkellisesti takaisin solun sis\u00e4\u00e4n. <strong>depolarisoitunut<\/strong>, tai paremminkin natriumionit muuttavat kalvon sis\u00e4puolisen alueen positiiviseksi verkoksi. T\u00e4m\u00e4 depolarisaation liike on kuuluisa <strong>toimintapotentiaali<\/strong>; kalvopotentiaali nousee ja laskee nopeasti. Potentiaali nousee +40mV:iin hieman yli 2 millisekunnissa ja palaa lepotilaan alle 3 millisekunnissa.<\/p>\n\n\n\n<p>Toimintapotentiaali ei tapahdu koko hermosolussa kerralla, vaan kalvon depolarisaatio alkaa dendriiteiss\u00e4 ja siirtyy sitten ytimeen osa kerrallaan, depolarisoituen ja palaten pian sen j\u00e4lkeen takaisin lepotilan potentiaaliin.<\/p>\n\n\n\n<p>Kalvon lepopotentiaalin palauttamiseksi natriumkanavat sulkeutuvat ja j\u00e4nniteohjatut kaliumkanavat avautuvat, jolloin kaliumionit p\u00e4\u00e4sev\u00e4t solun sis\u00e4lle, mik\u00e4 repolarisoi kalvon, jolloin kalvon sis\u00e4puolinen alue varautuu j\u00e4lleen negatiivisesti ja ulkopuolinen alue positiivisesti. Natrium-kaliumpumppu auttaa palauttamaan oikean m\u00e4\u00e4r\u00e4n kutakin ionia solun sis\u00e4lle, sill\u00e4 se p\u00e4\u00e4st\u00e4\u00e4 ulos kolme natriumionia jokaista kahta kaliumionia kohti.<\/p>\n\n\n\n<p>Voimme kuvitella sen kuin synkronoidun liikkeen, joka alkaa toimintapotentiaalin vasteesta ja p\u00e4\u00e4ttyy lepotilan palautumiseen.<\/p>\n\n\n<div class=\"wp-block-image\">\n<figure class=\"aligncenter size-large\"><a href=\"https:\/\/mindthegraph.com\/blog\/wp-content\/uploads\/2020\/12\/the-action-potential.png\"><img decoding=\"async\" loading=\"lazy\" width=\"516\" height=\"827\" src=\"https:\/\/mindthegraph.com\/blog\/wp-content\/uploads\/2020\/12\/the-action-potential.png\" alt=\"\" class=\"wp-image-12054\" srcset=\"https:\/\/mindthegraph.com\/blog\/wp-content\/uploads\/2020\/12\/the-action-potential.png 516w, https:\/\/mindthegraph.com\/blog\/wp-content\/uploads\/2020\/12\/the-action-potential-187x300.png 187w\" sizes=\"(max-width: 516px) 100vw, 516px\" \/><\/a><\/figure><\/div>\n\n\n<p>Mielenkiintoista on, ett\u00e4 kun aksonissa on j\u00e4nniteohjatut ionikanavat, jotka tuottavat ja levitt\u00e4v\u00e4t hermoimpulssia, dendriiteiss\u00e4 n\u00e4it\u00e4 kanavia ei ole. N\u00e4ill\u00e4 hermosolujen alueilla signaali ei v\u00e4lity toimintapotentiaalin vaan <strong>luokiteltu potentiaali, <\/strong>a<strong> <\/strong>erilainen signaalin etenemismuoto, jossa signaalin asteikko kasvaa matkan varrella, kunnes se muuttuu aktiopotentiaaliksi aksonissa.<\/p>\n\n\n\n<p>Huomaa, ett\u00e4 natriumioni on vastuussa toimintapotentiaalin etenemisest\u00e4 ja kalium puolestaan lepotilan palauttamisesta. N\u00e4iden ionien puute elimist\u00f6ss\u00e4 voi aiheuttaa ongelmia toimintapotentiaalin laadussa ja tehokkuudessa, mik\u00e4 tarkoittaa ongelmia synapseissa ja tiedon kulussa hermoston l\u00e4pi. Kaikki n\u00e4m\u00e4 ongelmat voivat laukaista mielenterveydellisi\u00e4 komplikaatioita ja sairauksia.<\/p>\n\n\n\n<p>Seuraava vaihe on hermoimpulssin siirtyminen seuraavaan hermosoluun. Eri asia tapahtuu kahden hermosolun v\u00e4lisess\u00e4 tilassa, synaptisessa raossa. Synaptinen halkio on eritt\u00e4in t\u00e4rke\u00e4 paikka tarkastella ja tutkia, sill\u00e4 siell\u00e4 monet eri v\u00e4litt\u00e4j\u00e4aineet astuvat toimintaan ja aktivoivat uuden signaalireitin, jossa k\u00e4ytet\u00e4\u00e4n reseptoreita, muita proteiineja ja muita ioneja kuin natriumia ja kaliumia. Mutta sen j\u00e4t\u00e4mme artikkelin seuraavaan keskusteluun. <strong>Hermoimpulssi OSA 2 - Synaptinen rako<\/strong>.<\/p>\n\n\n\n<p>Piditk\u00f6 t\u00e4m\u00e4n artikkelin infografiikoista? Voit k\u00e4ytt\u00e4\u00e4 Mind the Graph:t\u00e4 ja tehd\u00e4 kuvista my\u00f6s n\u00e4in informatiivisia. Hanki osoitteesta<a href=\"https:\/\/mindthegraph.com\/\"> Mind the Graph<\/a> ja vilkaise<a href=\"https:\/\/app.mindthegraph.com\/illustrations\"> Kuvagalleria<\/a>, siell\u00e4 saatavilla<a href=\"https:\/\/app.mindthegraph.com\/illustrations\/subcategory\/neurology\"> neurologia<\/a> ja<a href=\"https:\/\/app.mindthegraph.com\/illustrations\/subcategory\/biochemistry\"> biokemia<\/a> kuvituksia, ja jos tarvitset apua, ole hyv\u00e4 ja<a href=\"https:\/\/mindthegraph.com\/\"> Ota yhteytt\u00e4<\/a>!<\/p>","protected":false},"excerpt":{"rendered":"<p>Jotta ymm\u00e4rt\u00e4isimme, miten neuroni toimii, meid\u00e4n on tarkasteltava kahta k\u00e4sitett\u00e4. Ensimm\u00e4inen liittyy siihen, mit\u00e4 neuronin sis\u00e4ll\u00e4 tapahtuu, kun informaatio kulkee eteenp\u00e4in - toimintapotentiaali - toinen liittyy siihen, miten informaatio siirtyy yhdest\u00e4 solusta toiseen soluun - [...].<\/p>","protected":false},"author":4,"featured_media":12055,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":[],"categories":[959],"tags":[812,813],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v19.9 - https:\/\/yoast.com\/wordpress\/plugins\/seo\/ -->\n<title>Nerve Impulses PART 1 \u2013 The Action Potential - MTG<\/title>\n<meta name=\"description\" content=\"It&#039;s a deep dive into nerve impulses. 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He has a Ph.D. and solid scientific background in Psychopharmacology and experience as a Guest Researcher at the Max Planck Institute of Psychiatry (Germany) and Researcher in D'Or Institute for Research and Education (IDOR, Brazil). Fabricio holds over 2500 citations in Google Scholar. He has 10 years of experience in small innovative businesses, with relevant experience in product design and innovation management. 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