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Nejroplasti chnist angl Neuroplasticity abo plastichnist mozku zdatnist mozku zminyuvatisya ta adaptuvatisya protyagom zhittya Ce proces za dopomogoyu yakogo mozok reorganizuyetsya u vidpovid na novij dosvid navchannya ta vpliv navkolishnogo seredovisha 1 2 Ilyustraciya sinaptichnoyi peredachi mizh dvoma nejronami source source source source source source source source source source source source Kartografuvannya nejronnih merezh mozku na osnovi difuzijnoyi MRTNejroplastichnist ye klyuchovim mehanizmom sho lezhit v osnovi navchannya ta pam yati Koli lyudina chi tvarina diznayetsya shos nove mozok formuye novi zv yazki mizh nejronami abo zmicnyuye isnuyuchi zv yazki shob zberigati ta vidtvoryuvati cyu informaciyu Z chasom povtorne navchannya mozhe prizvesti do trivalih zmin u strukturi ta funkciyah mozku 1 Nejroplastichnist takozh vidigraye vazhlivu rol u vidnovlenni pislya travm golovnogo mozku abo nevrologichnih rozladiv U deyakih vipadkah mozok mozhe reorganizuvatisya shob kompensuvati poshkodzheni abo vtracheni funkciyi dozvolyayuchi lyudyam vidnoviti pevnij riven normalnogo stanu 3 Doslidzhennya nejroplastichnosti ye vagomim ta informativnim dlya rozvitku takih galuzej yak osvita medicina likuvannya i reabilitaciya ta nejronaukovi doslidzhennya 1 2 Zmist 1 Istoriya 1 1 Terminologiya 1 2 Doslidzhennya ta vidkrittya 2 Priroda ta mehanizmi nejroplastichnosti 2 1 Molekulyarnij riven 2 1 1 Korotkochasna sinaptichna plastichnist 2 1 2 Dovgostrokova sinaptichna plastichnist 3 Tipi nejroplastichnosti 4 Suchasni doslidzhennya 4 1 Nejronauki 4 1 1 Molekulyarna nejronauka 4 1 2 Klitinna nejronauka 4 1 3 Povedinkova nejronauka 4 1 4 Kognitivna nejronauka 4 1 5 Sistemna nejronauka 4 2 Mizhdisciplinarni nauki 4 2 1 Nejrogenetika 4 2 2 Nejroinformatika 4 2 3 Nejroradiologiya 4 2 4 Nejrolingvistika 4 2 5 Nejrokibernetika ta nejroinzheneriya 4 2 6 Inzheneriya nervovoyi tkanini 5 Divis takozh 6 Literatura 6 1 Knigi 6 2 Zhurnali 7 Posilannya 8 PrimitkiIstoriya RedaguvatiTerminologiya Redaguvati Termin plastichnist vpershe zastosuvav do povedinki v 1890 roci Vilyam Dzhejms u Principah psihologiyi de cej termin vikoristovuvavsya dlya opisu strukturi dostatno slabkoyi shob piddatisya vplivu ale dostatno silnoyi shob ne piddatisya vsim odrazu 3 Hocha na pochatku 1900 h rokiv mozok zazvichaj rozglyadavsya yak nevidnovlyuvanij organ Santyago Ramon i Kahal vikoristovuvav termin nejronalna plastichnist dlya opisu nepatologichnih zmin u strukturi mozku doroslih 4 Bazuyuchis na svoyij Doktrini nejroniv Kahal vpershe opisav nejron yak fundamentalnu odinicyu nervovoyi sistemi yaka zgodom posluzhila suttyevoyu osnovoyu dlya rozrobki koncepciyi nejronnoyi plastichnosti Vin vikoristovuvav termin plastichnist stosovno svoyeyi roboti shodo viyavlennya degeneraciyi ta regeneraciyi v centralnij nervovij sistemi zokrema pislya dosyagnennya lyudinoyu doroslogo viku Bagato nejrobiologiv vikoristovuvali termin plastichnist lishe dlya poyasnennya regenerativnoyi zdatnosti periferichnoyi nervovoyi sistemi i konceptualne perenesennya cogo terminu Kahalem viklikalo superechlivu diskusiyu 5 Pershim hto vikoristav termin nejroplastichnist buv polskij nejrobiolog Yezhi Konorskij 6 Doslidzhennya ta vidkrittya Redaguvati U XIX stolitti Charlz Darvin vvazhav sho plastichnist instinktiv sho vinikaye z minlivosti yih vrodzhenih morfologichnih osnov i daye material dlya diyi prirodnogo doboru ye dostatnoyu dlya evolyuciyi instinktivnoyi povedinki i ye povedinkoyu vzagali 7 U 1923 roci Karl Leshli proviv eksperimenti na mavpah rezusah yaki prodemonstruvali zmini v nejronnih shlyahah yaki yak vin dijshov visnovku ye dokazom plastichnosti Nezvazhayuchi na ce ta inshi doslidzhennya yaki svidchili pro plastichnist nejrobiologi togo chasu ne sprijnyali ideyu nejroplastichnosti 8 U 1949 roci Donald Gebb stverdzhuvav sho nejronni zv yazki ne ye statichnimi yih mozhna pokrashuvati kozhnogo razu koli voni aktivuyutsya Cya gipoteza vidoma yak pravilo Gebba Vono peredbachaye sho proces navchannya ne ye rezultatom fiksovanoyi vlastivosti nejroniv ce zalezhna vid chasu funkciya yih zminnih zv yazkiv Osnovna ideya yaka lezhit v osnovi pravila Gebba polyagaye v tomu sho skupchennya nejroniv mayut tendenciyu zbudzhuvatisya razom koli sprijmayetsya podraznik Yih kolivalna aktivnist mozhe trivati i pislya pripinennya diyi podraznika Takim chinom podiya yaka sprichinila odnochasne kolivannya grupi nejroniv fiksuyetsya v pam yati u viglyadi grupi sinhronizovanih nejroniv 9 Lishe v 1960 h rokah nejrobiologi usvidomili sho zhertvi insultu chasto vidnovlyuvali pevni kognitivni funkciyi yaksho voni vikonuvali adekvatni rozumovi ta abo fizichni vpravi pid medichnim kontrolem pislya insultu Merian Dajmond z Kalifornijskogo universitetu v Berkli nadala pershi naukovi dokazi anatomichnoyi plastichnosti mozku pacyukiv opublikuvavshi svoye doslidzhennya v 1964 roci 10 11 Pol Bah i Rita pokazav sho rizni dilyanki nashogo mozku mozhut reorganizovuvatis dlya kompensaciyi riznih sensornih oblastej poshkodzhenih insultom 12 Vin stvoriv priladi yaki dozvlyali slipim lyudyam bachiti spinoyu a pacientam z poshkodzhenim vestibulyarnim aparatom utrimuvati rivnovagu 13 Ce bulo yaskravim dokazom togo sho mozok zdatnij reorganizovuvatisya zminyuyuchi nejronni zv yazki i v zrilomu vici U 1983 roci Majkl Mercenich i Dzhon Kaas doslidzhuyuchi mozok mavp otrimali znachni eksperimentalni rezultati yaki pidtverdzhuyut gipotezu pro te sho mozok maye plastichnu povedinku protyagom usogo zhittya 14 15 U 21 mu stolitti koncepciya nejroplastichnosti shiroko prijnyata v nejronaukah Vagomij istorichnij oglyad koncepciyi nejroplastichnosti razom iz cikavimi istoriyami vipadkiv pro zdatnist nashogo mozku zminyuvati vlasnu strukturu nadaye v svoyih knigah psihiatr i psihoanalitik Norman Dojdzh Avtor opisuye yak nejronni lancyugi mozku dorosloyi lyudini mozhut perebudovuvatisya protyagom usogo zhittya Napriklad analiz zobrazhen mozku studentiv universitetu yaki gotuvalisya do ispitiv prodemonstruvav sho yih sira rechovina zbilshilasya v zadnij i lateralnij tim yanij kori protyagom dekilkoh misyaciv 8 Priroda ta mehanizmi nejroplastichnosti RedaguvatiNejroplastichnist ce zdatnist nervovoyi sistemi adaptuvatisya i zminyuvatisya u vidpovid na dosvid Rizni naukovi disciplini vivchayut i poyasnyuyut nejroplastichnist na riznih rivnyah organizaciyi na molekulyarnomu klitinnomu i sistemnomu Odnim iz klyuchovih mehanizmiv nejroplastichnosti ye posilennya ta oslablennya sili sinapsiv zv yazkiv mizh nejronami Cej proces vidomij yak sinaptichna plastichnist Sinaptichna plastichnist buvaye korotkochasna i dovgostrokova 16 Korotkochasna plastichnist mozhe vinikati shvidko ta timchasovo sekundi hvilini u vidpovid na zmini presinaptichnoyi aktivnosti Vona vklyuchaye zmini v efektivnosti vivilnennya nejromediatora v presinaptichnij terminali abo zmini v chutlivosti abo kilkosti postsinaptichnih receptoriv Dovgostrokova plastichnist zazvichaj vinikaye u vidpovid na povtornu abo trivalu stimulyaciyu sinapsu Dovgostrokova plastichnist formuyetsya protyagom godin i zberigayetsya protyagom trivalogo chasu Vona vklyuchaye zmini v strukturi ta abo funkciyi sinapsiv taki yak zmini v kilkosti receptoriv zmini v kilkosti mitohondrij poblizu sinapsu ta zmini v morfologiyi dendritnih shipikiv Taki zmini polegshuyut abo uskladnyuyut provedennya impulsu mizh konkretnimi nejronami Yak korotkochasnu tak i dovgostrokovu plastichnist mozhna sposterigati za dopomogoyu elektrofiziologichnih vimiryuvan sinaptichnoyi peredachi takih yak zmini amplitudi abo chastoti sinaptichnih strumiv abo potencialiv 17 Krim togo dovgostrokovu plastichnist takozh mozhna sposterigati cherez strukturni ta funkcionalni zmini v sinapsah za dopomogoyu metodiv vizualizaciyi takih yak elektronna mikroskopiya abo dvofotonna mikroskopiya 18 19 Molekulyarnij riven Redaguvati Odnim iz klyuchovih mehanizmiv nejroplastichnosti ye posilennya ta oslablennya sinapsiv yaki ye zv yazkami mizh nejronami Cej proces vidomij yak sinaptichna plastichnist i oposeredkovuyetsya zminami vlastivostej ionnih kanaliv receptoriv nejromediatoriv i vnutrishnoklitinnih signalnih shlyahiv yaki prizvodyat do zmin v ekspresiyi geniv i sintezi bilkiv Korotkochasna sinaptichna plastichnist Redaguvati Korotkochasna sinaptichna plastichnist yak pravilo pov yazana zi zminami v efektivnosti vivilnennya nejromediatoriv i mozhe vinikati shvidko ta timchasovo u vidpovid na zmini presinaptichnoyi aktivnosti 20 Odnim z mehanizmiv sho lezhit v osnovi korotkochasnoyi plastichnosti ye aktivaciya presinaptichnih kalciyevih kanaliv potencialami diyi sho prizvodit do zbilshennya priplivu kalciyu v presinaptichnu terminal 21 Take pidvishennya rivnya kalciyu mozhe aktivuvati nizku nizhidnih signalnih shlyahiv vklyuchayuchi aktivaciyu Ca2 kalmodulin zalezhnoyi proteyinkinazi II CaMKII i proteyinkinazi C sho mozhe prizvesti do zbilshennya jmovirnosti vivilnennya nejromediatora abo pidvishennya chutlivosti postsinaptichnih receptoriv 22 23 Inshim mehanizmom korotkochasnoyi plastichnosti ye korotkochasna fasilitaciya ta korotkochasna depresiya deyaki sinapsi prizvodyat do korotkochasnoyi fasilitaciyi koli amplituda postsinaptichnoyi vidpovidi zbilshuyetsya u vidpovid na povtornu presinaptichnu stimulyaciyu Ce mozhe statisya cherez zmini vlastivostej presinaptichnih vezikul napriklad zbilshennya kilkosti nejromediatora sho vidilyayetsya na vezikulu abo zbilshennya kilkosti vivilnenih vezikul I navpaki korotkochasna depresiya mozhe viniknuti cherez visnazhennya presinaptichnih vezikul abo znizhennya jmovirnosti vivilnennya vezikul 24 25 She odnim mehanizmom korotkochasnoyi plastichnosti ye modulyaciya receptoriv ta ionnih kanaliv yak presinaptichnih tak i postsinaptichnih Presinaptichni ionni kanali taki yak naprugozalezhni kalciyevi kanali mozhut modulyuvatisya riznimi signalnimi shlyahami shob vplivati na jmovirnist vivilnennya nejromediatora Napriklad aktivaciya presinaptichnih metabotropnih glutamatnih receptoriv mGluRs mozhe prizvesti do znizhennya jmovirnosti vivilnennya nejromediatora shlyahom ingibuvannya priplivu kalciyu v presinaptichnu terminal 26 27 28 Postsinaptichni receptori takozh mozhna modulyuvati shob vplivati na amplitudu ta trivalist postsinaptichnih vidpovidej Napriklad aktivaciya receptoriv zv yazanih z G proteyinom GPCR mozhe prizvoditi do zmin u providnosti postsinaptichnih ionnih kanaliv vplivayuchi na velichinu postsinaptichnoyi vidpovidi Krim togo zmini u vlastivostyah postsinaptichnih receptoriv taki yak zmini v stani fosforilyuvannya receptoriv mozhut vplivati na yih chutlivist do nejromediatora 29 Dovgostrokova sinaptichna plastichnist Redaguvati Dovgostrokova sinaptichna plastichnist ye vlasne tip procesom yakij spriyaye dovgostrokovij reorganizaciyi mozku tobto dovgostrokovij pam yati Vona pov yazana zi zminami v strukturi ta funkciyi sinapsiv i mozhe vidbuvatisya protyagom trivalogo periodu chasu u vidpovid na stijki zmini v presinaptichnij aktivnosti tobto na trivale i povtorne zbudzhennya Odnim iz dobre vivchenih mehanizmiv dovgostrokovoyi sinaptichnoyi plastichnosti ye dovgotrivale potenciyuvannya yake vvazhayetsya klitinnim mehanizmom sho lezhit v osnovi navchannya ta pam yati Dovgotrivale potenciyuvannya iniciyuyetsya aktivaciyeyu receptoriv N metil D aspartatu NMDA receptoriv nejromediatorom glutamatom sho prizvodit do zbudzhennya i nadhodzhennya kalciyu v postsinaptichnij nejron Cej pripliv kalciyu mozhe aktivuvati nizku nizhidnih signalnih shlyahiv sho prizvodit do aktivaciyi kinaz yaki mozhut fosforilyuvati bilki ta zminyuvati yihnyu funkciyu vklyuchayuchi aktivaciyu CaMKII ta CREB sho mozhe prizvoditi do zmin u strukturi ta funkciyi sinapsiv takih yak zbilshennya kilkosti abo chutlivosti postsinaptichnih receptoriv zmin u vlastivostyah ionnih kanaliv i zmin u rozmiri ta formi dendritnih shipikiv 30 CREB aktivuyetsya signalnim kaskadom yakij zapuskayetsya pidvishenimi rivnyami vnutrishnoklitinnogo cAMF yakij mozhe buti indukovanij krim nejromediatoriv yak glutamat takozh faktorami rostu ta nejromodulyatorami Pislya aktivaciyi CREB zv yazuyetsya zi specifichnimi poslidovnostyami DNK vidomimi yak elementi vidpovidi cAMF CRE roztashovani v regulyatornih oblastyah cilovih geniv 31 Ce zv yazuvannya prizvodit do rekrutuvannya bilkiv koaktivatoriv yaki u svoyu chergu spriyayut transkripciyi cilovih geniv u informacijnu RNK mRNK yaka mozhe translyuvatis u bilki neobhidni dlya posilennya sinaptichnoyi sili ukriplennya dovgostrokovoyi pam yati Bagato geniv yaki berut uchast u nejroplastichnosti regulyuyutsya CREB pryamo chi oposeredkovano Napriklad kilka rannih geniv IEG yaki berut uchast u sinaptichnij plastichnosti ta formuvanni pam yati vklyuchayuchi c fos Arc i Egr1 regulyuyutsya CREB 32 Krim togo geni yaki koduyut faktori rostu chleni rodini BDNF taki yak nejrotrofin 3 NTF 3 i nejrotrofin 4 5 NTF 4 5 takozh regulyuyutsya CREB 33 34 Takim chinom CREB ye kritichno vazhlivim regulyatorom ekspresiyi geniv zaluchenih v mehanizmah dovgostrokovoyi sinaptichnoyi plastichnosti Inshim vazhlivim mehanizmom dovgostrokovoyi sinaptichnoyi plastichnosti ye utvorennya novih sinapsiv Cej proces vklyuchaye rist novih dendritnih shipikiv i utvorennya novih zv yazkiv mizh nejronami Ce mozhe buti sprovokovano vivilnennyam faktoriv rostu takih yak nejrotrofichnij faktor mozku BDNF yakij mozhe spriyati zrostannyu novih sinapsiv i posilyuvati sinaptichnu plastichnist 35 Takozh vvazhayetsya sho regulyaciya mitohondrialnogo biogenezu ta funkcij mitohondrij vidigraye klyuchovu rol u zabezpechenni energiyeyu neobhidnoyu dlya pidtrimki klitinnih procesiv yaki lezhat v osnovi dovgostrokovoyi sinaptichnoyi plastichnosti 36 37 U nejronah mitohondriyi vikonuyut riznomanitni funkciyi taki yak virobnictvo energiyi u formi ATF buferizaciya kalciyu ta generaciya aktivnih form kisnyu 37 Odnim z vazhlivih mehanizmiv zbilshennya kilkosti mitohondrij v aktivnih sinapsah ye aktivaciya koaktivatora transkripciyi PGC 1a gamma koaktivator 1 alfa receptora sho aktivuyetsya proliferatorom peroksisom yakij yak vidomo regulyuye mitohondrialnij biogenez i funkcionuye u vidpovid na pidvishenu potrebu v energiyi PGC 1a aktivuyetsya faktorom transkripciyi NRF 1 yadernij respiratornij faktor 1 yakij zv yazuyetsya z promotornimi dilyankami mitohondrialnih geniv sho koduyutsya v yadrah i posilyuye yih ekspresiyu Ce prizvodit do zbilshennya mitohondrialnogo biogenezu i shojno sintezovani mitohondriyi spryamovuyutsya do sinapsiv yaki vidchuvayut pidvishenu potrebu v energiyi 38 Inshij mehanizm vklyuchaye aktivaciyu proteyinkinazi AMPK AMP aktivovana proteyinkinaza yaka ye klyuchovim regulyatorom gomeostazu klitinnoyi energiyi Aktivaciya AMPK prizvodit do fosforilyuvannya kilkoh nastupnih mishenej vklyuchayuchi PGC 1a sho posilyuye mitohondrialnij biogenez 39 Krim togo AMPK takozh mozhe regulyuvati transportuvannya mitohondrij do sinapsu shlyahom fosforilyuvannya mitohondrialnogo motornogo bilka Miro yakij kontrolyuye ruh mitohondrij uzdovzh mikrotrubochok 40 41 42 Nareshti doslidzhennya takozh pokazali uchast procesiv podilu ta zlittya mitohondrij u regulyaciyi rozpodilu mitohondrij u sinapsah 43 44 45 Ci procesi kontrolyuyutsya dekilkoma bilkami vklyuchayuchi DRP1 pov yazanij z dinaminom bilok 1 i MFN1 2 mitofuzin 1 2 i vvazhayetsya sho voni vidigrayut pevnu rol u regulyuvanni kilkosti mitohondrij u sinapsah 46 47 48 49 Prostimi slovami povtorna j trivala aktivaciya pevnogo sinapsu prizvodit do postupovogo zbilshennya kilkosti mitohondrij v nejronnih vidrostkah sinapsu sho sproshuye provedennya impulsu mizh nejronami sinapsu i zakriplyuye dovgostrokovu pam yat Chim chastishe i regulyarnishe povtorennya tim legshe provedennya impulsu Tipi nejroplastichnosti RedaguvatiJordan H Grafman vidiliv 4 tipi kortikalnoyi nejroplastichnosti makroriven adaptaciya gomologichnoyi zoni pri poshkodzhenni dilyanki mozku z odnogo boku yiyi funkciya perenositsya do gomologichnoyi dilyanki u protilezhnij pivkuli mozku yak priklad pri poshkodzhenni pravoyi tim yanoyi dilyanki yiyi funkciyu perebiraye liva tim yana dilyanka kompensacijnij maskarad mozok viroblyaye alternativnu strategiyu vikonannya zavdannya koli pochatkova strategiya ne mozhe buti dotrimana cherez yiyi nedocilnist abo porushennya odnogo z yiyi etapiv yak priklad zdijsnennya peremishennya za dopomogoyu ne prostorovoyi oriyentaciyi yaka ye porushenoyu a za dopomogoyu slovesnih instrukcij perehresne perepriznachennya adaptacijna reorganizaciya nejroniv dlya integraciyi funkcij dvoh abo bilshe sensornih sistem yak priklad nezryachi vid narodzhennya mozhut formuvati uyavlennya pro navkolishnij svit na osnovi ne zorovih a dotikovih podraznikiv rozshirennya karti gnuchkist dilyanok mozku yaki priznacheni dlya vikonannya odnogo tipu funkcij abo zberigannya pevnoyi formi informaciyi yak priklad postijni zanyattya z navchannya gri na skripci stimulyuyut rozshirennya sluhovoyi zoni kori Suchasni doslidzhennya RedaguvatiNejronauki Redaguvati Molekulyarna nejronauka Redaguvati Molekulyarna nejronauka vivchaye molekulyarni mehanizmi yaki lezhat v osnovi zmin u sinaptichnomu zv yazku ta funkciyi nejroniv u vidpovid na novij dosvid i navchannya Molekulyarna nejronauka ohoplyuye shirokij diapazon doslidzhen vklyuchayuchi regulyaciyu ekspresiyi geniv sintez bilkiv ta posttranslyacijni modifikaciyi Doslidzhennya molekulyarnogo rivnya plastichnosti mozku ohoplyuye chislenni specifichni bilki fermenti receptori strukturni bilki tosho yaki berut uchast u bagatoh koordinovanih i vzayemodiyuchih signalnih i metabolichnih procesah yihnya modulyaciya utvoryuye molekulyarnu osnovu dlya plastichnosti mozku 50 51 Ekspresiya geniv i sintez bilkiv Odnim iz klyuchovih napryamkiv doslidzhennya nejroplastichnosti v molekulyarnij nejronauci ye doslidzhennya togo yak zmini v ekspresiyi geniv i sintezi bilkiv spriyayut formuvannyu ta zmicnennyu sinaptichnih zv yazkiv mizh nejronami Napriklad yak faktori transkripciyi ta inshi regulyatorni molekuli kontrolyuyut ekspresiyu geniv yaki berut uchast u sinaptichnij plastichnosti ta navchanni 52 53 54 55 56 Shilnist receptoriv she odnim napryamom doslidzhennya nejroplastichnosti v molekulyarnij nejronauci ye vivchennya togo yak signalni sistemi klitin ta posttranslyacijni modifikaciyi regulyuyut aktivnist ionnih kanaliv i receptoriv yaki oposeredkovuyut sinaptichnu peredachu Napriklad yak fosforilyuvannya ubikvitinuvannya ta inshi modifikaciyi vplivayut na funkciyu glutamatnih receptoriv ta inshih klyuchovih bilkiv zaluchenih do sinaptichnoyi plastichnosti 57 58 59 60 Psihoplastogeni krim togo molekulyarna nejronauka mozhe buti vikoristana dlya rozrobki vtruchan spryamovanih na konkretni molekulyarni mehanizmi dlya pidvishennya sinaptichnoyi plastichnosti ta spriyannya vidnovlennyu pislya travmi golovnogo mozku abo zahvoryuvannya Napriklad doslidniki mozhut vikoristovuvati neveliki molekuli abo inshi farmakologichni agenti dlya modulyaciyi aktivnosti klyuchovih signalnih shlyahiv abo fermentiv yaki berut uchast u sintezi bilka dlya pidvishennya sinaptichnoyi plastichnosti ta pokrashennya kognitivnih funkcij div Psihoplastogeni 2 61 62 63 Mitohondrialna shilnist perspektivnimi ye takozh doslidzhennya mitohondrialnogo biogenezu ta mitohondrialnoyi dinakiki v aktivnih nejronah Mitohondriyi vidigrayut virishalnu rol u regulyuvanni sinaptichnoyi plastichnosti i ostanni doslidzhennya pokazali sho zmini v dinamici mitohondrij napriklad podil i zlittya mozhut vplivati na sinaptichnu funkciyu ta plastichnist Rozuminnya molekulyarnih mehanizmiv sho lezhat v osnovi cih procesiv mozhe stvoriti novi cili dlya terapevtichnogo vtruchannya pri nevrologichnih rozladah 64 65 Multiomika nejrona ce kompleksnij pidhid u molekulyarnij nejronauci yakij ob yednuye dani z epigenomiki 41 42 43 44 genomiki 45 46 transkriptomiki 47 48 49 proteomiki 50 51 52 53 metabolomiki ta inshih omik shob zrozumiti ansambl molekulyarnih vhayemodij v mozku z tochku zoru normalnoyi fiziologiyi 54 66 chi patologiyi 55 vklyuchno z metodami doslidzhennya ta vplivu na mehanizmi nejroplastichnosti Genomni ta epigenomni doslidzhennya pidkreslyuyut yak genni variaciyi ta epigenomni nadstrojki sprichineni navkolishnim seredovishem ta sposobom zhittya vplivayut na plastichnist mozku todi yak transkriptomika viyavlyaye skladni modeli ekspresiyi geniv Proteomnij i metabolomichnij analizi visvitlyuyut klyuchovi shlyahi bilkiv i metaboliti zalucheni do nejronalnih zmin Integraciya cih multiomichnih danih ta yih analiz z dopomogoyu mashinnogo navchannya ta shtuchnogo intelektu mozhe dati cinnu informaciyu dlya likuvannya nevrologichnih rozladiv chi posilennya intelektu 56 57 66 Klitinna nejronauka Redaguvati Klitinna nejronauka vivchaye klitinni mehanizmi yaki lezhat v osnovi zmin u sinaptichnih zv yazkah ta funkciyi nejroniv u vidpovid na dosvid i navchannya Klitinna nejronauka ohoplyuye riznomanitni napryamki doslidzhen vklyuchayuchi vlastivosti okremih nejroniv organizaciyu nejronnih lancyugiv i vzayemodiyu mizh riznimi tipami nejroniv Odnim iz klyuchovih napryamkiv doslidzhennya klitinnoyi nejronauki nejroplastichnosti ye doslidzhennya togo yak zmini sinaptichnoyi sili ta plastichnosti spriyayut navchannyu ta pam yati Napriklad yak dovgotrivala potenciaciya LTP i dovgotrivale prignichennya LTD sinaptichnoyi peredachi spriyayut formuvannyu ta konsolidaciyi spogadiv 67 68 69 70 71 Inshim napryamkom doslidzhennya klitinnoyi nejronauki nejroplastichnosti ye vivchennya togo yak rizni tipi nejroniv i glialnih klitin spriyayut formuvannyu ta pidtrimci nejronnih lancyugiv 72 73 Napriklad yak rizni tipi galmivnih internejroniv regulyuyut aktivnist zbudlivih nejroniv i spriyayut funkcionuvannyu nejronnih lancyugiv 74 75 76 Krim togo klitinna nejronauka mozhe buti vikoristana dlya rozrobki vtruchan spryamovanih na konkretni klitinni mehanizmi dlya pidvishennya sinaptichnoyi plastichnosti ta spriyannya vidnovlennyu pislya travmi golovnogo mozku abo zahvoryuvannya Napriklad doslidniki mozhut vikoristovuvati optogenetiku abo inshi metodi shob manipulyuvati aktivnistyu pevnih tipiv nejroniv shob posiliti abo zagalmuvati yihnyu aktivnist i vplinuti na funkciyu nejronnih lancyugiv 77 62 78 79 80 Povedinkova nejronauka Redaguvati Povedinkova nejronauka nejroplastichnosti vivchaye yak zmini v povedinci ta dosvidi mozhut vplivati na strukturu ta funkciyi mozku na klitinnomu ta sistemnomu rivnyah Povedinkova nejronauka ohoplyuye shirokij spektr doslidnickih oblastej vklyuchayuchi navchannya ta pam yat sensornu obrobku ta ruhovij kontrol Odnim iz klyuchovih napryamkiv doslidzhennya nejroplastichnosti v povedinkovij nejronauci ye doslidzhennya togo yak rizni tipi dosvidu ta navchannya mozhut vplivati na formuvannya ta zmicnennya sinaptichnih zv yazkiv mizh nejronami 81 Napriklad doslidniki mozhut vivchati yak vpliv novih podraznikiv abo zbagachennya seredovisha mozhe pidvishiti sinaptichnu plastichnist i pokrashiti kognitivni funkciyi 82 83 84 85 86 She odnim napryamom doslidzhennya nejroplastichnosti v povedinkovij nejronauci ye vivchennya togo yak sprichineni dosvidom zmini v mozku spriyayut rozvitku nevrologichnih rozladiv 87 Napriklad yak hronichnij stres abo psihologichna travma mozhut prizvesti do zmin u nejronnih lancyugah yaki spriyayut rozvitku depresiyi chi trivozhnih rozladiv 88 89 90 91 92 93 Krim togo povedinkova nejronauka nejroplastichnosti mozhe buti vikoristana dlya rozrobki vtruchan yaki spriyayut adaptacijnim zminam u mozku ta pokrashuyut kognitivni funkciyi 94 Bilshe togo povedinkovi vtruchannya taki yak kognitivne navchannya abo fizichni vpravi 94 mozhut buti zastosovani shob pidvishiti sinaptichnu plastichnist i spriyati vidnovlennyu pislya travm ta patologij nervovoyi sistemi 95 96 Z yavlyayetsya vse bilshe dokaziv togo sho regulyarni fizichni vpravi mozhut spriyati mitohondrialnomu biogenezu v mozku sho mozhe spriyati pokrashennyu kognitivnih funkcij i nastroyu Ce prizvelo do zacikavlenosti u vikoristanni fizichnih vprav yak nemedikamentoznogo vtruchannya dlya nejrodegenerativnih rozladiv ta inshih nevrologichnih staniv 97 98 Kognitivna nejronauka Redaguvati Kognitivna nejronauka vivchaye yak dosvid i navchannya formuyut nejronni lancyugi ta vivchaye kognitivni procesi yaki lezhat v osnovi sprijnyattya uvagi pam yati movi ta inshih vishih kognitivnih funkcij Odniyeyu z klyuchovih sfer doslidzhen kognitivnoyi nejronauki nejroplastichnosti ye doslidzhennya togo yak rizni oblasti ta merezhi mozku spriyayut pevnim kognitivnim procesam Napriklad vikoristannya funkcionalnoyi magnitno rezonansnoyi tomografiyi fMRT abo elektroencefalografiyi EEG shob dosliditi yak zmini nejronnoyi aktivnosti spriyayut pokrashennyu cih kognitivnih funkcij 99 Takozh kognitivna nejronauka mozhe buti vikoristana dlya rozrobki vtruchan spryamovanih na pevni kognitivni procesi ta nejronni lancyugi dlya pokrashennya kognitivnih funkcij i likuvannya nevrologichnih rozladiv Napriklad doslidniki mozhut vikoristovuvati neinvazivni metodi stimulyaciyi mozku taki yak transkranialna magnitna stimulyaciya TMS abo transkranialna stimulyaciya postijnim strumom tDCS shob modulyuvati nervovu aktivnist u pevnih oblastyah mozku ta pokrashuvati kognitivni funkciyi 100 101 102 Sistemna nejronauka Redaguvati Sistemna nejronauka nejroplastichnosti ce oblast yaka vivchaye organizaciyu ta funkcionuvannya nejronnih lancyugiv ta merezh na rivni sistem a takozh te yak ci sistemi zminyuyutsya u vidpovid na dosvid i navchannya Sistemna nejronavka peredbachaye vivchennya togo yak nejronni lancyugi ta merezhi pracyuyut razom shob obroblyati informaciyu ta generuvati povedinku Doslidniki sistemnoyi nejronauki nejroplastichnosti vikoristovuyut nejrovizualizaciyu ta povedinkove testuvannya shob dosliditi yak zmini nejronnoyi aktivnosti ta zv yazkiv v riznih oblastyah mozku pov yazani zi zminami v povedinci 103 104 Voni takozh mozhut vikoristovuvati taki instrumenti yak optogenetika ta hemogenetika shob manipulyuvati nejronnoyu aktivnistyu v pevnih lancyugah i doslidzhuvati yihnyu rol u povedinci 105 106 107 Odniyeyu z klyuchovih sfer doslidzhennya sistemnoyi nejronauki nejroplastichnosti ye vivchennya sensornoyi obrobki ta sprijnyattya Doslidniki doslidzhuyut yak sensorna informaciya z navkolishnogo seredovisha koduyetsya nejronami v sensornih oblastyah mozku i yak cya informaciya integruyetsya ta obroblyayetsya v oblastyah vishogo rivnya dlya stvorennya sprijnyattya 108 109 110 She odnim napryamom doslidzhennya sistemnoyi nejronauki nejroplastichnosti ye vivchennya motornogo kontrolyu ta navchannya Doslidniki doslidzhuyut yak motorni komandi generuyutsya ta vikonuyutsya nejronnimi lancyugami v mozku i yak ci lancyugi adaptuyutsya ta zminyuyutsya u vidpovid na navchannya ta praktiku 111 112 Krim togo sistemna nejronauka nejroplastichnosti mozhe buti vikoristana dlya doslidzhennya togo yak nervovi lancyugi porushuyutsya pri nevrologichnih i psihichnih rozladah Napriklad doslidniki mozhut dosliditi yak zmini v zv yazkah i aktivnosti nejronnih lancyugiv u mozku spriyayut viniknennyu simptomiv takih rozladiv yak shizofreniya depresiya ta hvoroba Alcgejmera 2 113 114 Zagalom sistemna nejronauka nejroplastichnosti pragne zrozumiti yak zmini nejronnoyi aktivnosti ta zv yazku v riznih oblastyah mozku viklikayut povedinku i yak ci zmini mozhut modulyuvatisya dosvidom i navchannyam Doslidzhuyuchi ci mehanizmi doslidniki zmozhut rozrobiti novi pidhodi do pokrashennya kognitivnih funkcij i likuvannya nevrologichnih i psihichnih rozladiv Mizhdisciplinarni nauki Redaguvati Nejrogenetika Redaguvati Nejrogenetika nejroplastichnosti doslidzhuye yak genetichni faktori vplivayut na zdatnist nejronnih merezh zaznavati adaptivnih zmin u vidpovid na novij dosvid i navchannya Odniyeyu z klyuchovih sfer doslidzhen u nejrogenetici nejroplastichnosti ye identifikaciya geniv yaki berut uchast u regulyaciyi sinaptichnoyi plastichnosti ta rozvitku nejroniv 115 116 Napriklad vikoristannya povnogenomnogo doslidzhennya asociacij GWAS shob identifikuvati zagalni genetichni varianti pov yazani z individualnimi vidminnostyami v kognitivnih zdibnostyah takih yak pam yat abo uvaga 117 Inshim napryamkom doslidzhen nejrogenetiki nejroplastichnosti ye vivchennya epigenetichnih mehanizmiv yaki regulyuyut ekspresiyu geniv u vidpovid na signali navkolishnogo seredovisha Napriklad yak metilyuvannya DNK abo modifikaciyi gistoniv vplivayut na ekspresiyu geniv 118 119 zaluchenih do sinaptichnoyi plastichnosti ta navchannya 120 121 122 123 124 125 Krim togo sferoyu dosdidzhen nejrogenetiki nejroplastichnosti ye rozrobka personalizovanih vtruchan spryamovanih na konkretni genetichni faktori yaki spriyayut kognitivnij disfunkciyi abo nevrologichnim rozladam Napriklad vikorisannya genoterapiyi dlya dostavki terapevtichnih geniv abo modulyaciyi ekspresiyi geniv u pevnih nejronnih lancyugah shob pidvishiti sinaptichnu plastichnist i spriyati vidnovlennyu pislya travmi golovnogo mozku abo zahvoryuvannya 126 127 128 129 130 Nejroinformatika Redaguvati Nejroinformatika nejroplastichnosti peredbachaye vikoristannya obchislyuvalnih ta informacijnih instrumentiv dlya analizu ta modelyuvannya skladnih nejrobiologichnih procesiv yaki lezhat v osnovi nejroplastichnosti Ci instrumenti mozhut dopomagayut integruvati ta analizuvati veliki obsyagi danih iz bagatoh dzherel zokrema genetiki nejrovizualizaciyi multiomiki ta povedinkovih doslidzhen Odnim iz klyuchovih napryamkiv nejroinformatichnih doslidzhen pov yazanih iz nejroplastichnistyu ye rozrobka obchislyuvalnih modelej sinaptichnoyi plastichnosti Ci modeli mozhut dopomogti doslidnikam zrozumiti skladnu vzayemodiyu mizh procesami na molekulyarnomu klitinnomu ta sistemnomu rivnyah yaki regulyuyut rist i zmicnennya sinapsiv u vidpovid na novij dosvid i navchannya 131 132 133 134 Inshim napryamkom nejroinformatichnih doslidzhen pov yazanih z nejroplastichnistyu ye rozrobka metodiv dobuvannya danih i mashinnogo navchannya dlya analizu velikomasshtabnih danih nejrovizualizaciyi Ci metodi mozhut dopomogti doslidnikam identifikuvati modeli mozkovoyi aktivnosti ta zv yazkiv yaki pov yazani z pevnimi kognitivnimi funkciyami takimi yak navchannya ta pam yat 135 136 137 138 Krim togo instrumenti nejroinformatiki mozhna vikoristovuvati dlya integraciyi ta analizu danih z bagatoh dzherel dlya viznachennya biomarkeriv i prediktoriv nejroplastichnosti ta kognitivnih funkcij 139 140 141 Napriklad doslidniki mozhut vikoristovuvati genetichni dani ta dani nejrovizualizaciyi shob identifikuvati osib yaki shvidshe za vse otrimayut korist vid pevnogo kognitivnogo vtruchannya abo programi reabilitaciyi 142 143 Multiomika ce kompleksnij pidhid u molekulyarnij nejronauci yakij ob yednuye dani z epigenomiki 41 42 43 44 genomiki 45 46 transkriptomiki 47 48 49 proteomiki 50 51 52 53 metabolomiki ta inshih omik shob zrozumiti ansambl molekulyarnih vhayemodij v mozku z tochku zoru normalnoyi fiziologiyi 54 66 chi patologiyi 55 vklyuchno z metodami doslidzhennya ta vplivu na mehanizmi nejroplastichnosti Genomni ta epigenomni doslidzhennya pidkreslyuyut yak genni variaciyi ta epigenomni nadstrojki sprichineni navkolishnim seredovishem ta sposobom zhittya vplivayut na plastichnist mozku todi yak transkriptomika viyavlyaye skladni modeli ekspresiyi geniv Proteomnij i metabolomichnij analizi visvitlyuyut klyuchovi shlyahi bilkiv i metaboliti zalucheni do nejronalnih zmin Integraciya cih multiomichnih danih ta yih analiz z dopomogoyu mashinnogo navchannya ta shtuchnogo intelektu mozhe dati cinnu informaciyu dlya likuvannya nevrologichnih rozladiv chi posilennya intelektu 56 57 66 Nejroradiologiya Redaguvati Nejroradiologiya ce medichna disciplina yaka vikoristovuye rizni metodi nejrovizualizaciyi dlya vizualizaciyi ta diagnostiki zahvoryuvan i staniv mozku ta nervovoyi sistemi i vidigraye vazhlivu rol u vivchenni nejroplastichnosti 144 Odnim iz najbilsh chasto vikoristovuvanih metodiv vizualizaciyi v nejroradiologiyi nejroplastichnosti ye funkcionalna MRT fMRT ce tip MRT yakij mozhe viyavlyati zmini krovotoku v riznih oblastyah mozku nadayuchi informaciyu pro mozkovu aktivnist 145 146 Inshi metodi vizualizaciyi sho vikoristovuyutsya v nejroradiologiyi vklyuchayut zvichajnu MRT komp yuternu tomografiyu KT pozitronno emisijnu tomografiyu PET i difuzijnu tenzornu vizualizaciyu DTI DTI ce specializovanij tip difuzijnoyi MRT yakij mozhe vizualizuvati shlyahi biloyi rechovini v mozku yaki ye nervovimi shlyahami sho z yednuyut rizni dilyanki mozku DTI mozhna vikoristovuvati dlya vivchennya zmin zv yaznosti biloyi rechovini yaki vidbuvayutsya v rezultati nejroplastichnosti 147 148 Nejroradiologiya vidigraye vazhlivu rol yak u diagnostici ta monitoringu staniv yaki vplivayut na nejroplastichnist takih yak insult cherepno mozkova travma ta nejrodegenerativni zahvoryuvannya 149 tak i dlya monitoringu efektiv vtruchan spryamovanih na pidvishennya nejroplastichnosti takih yak kognitivne navchannya abo fizioterapiya 150 151 Nejrolingvistika Redaguvati Nejrolingvistika ce galuz prikladnoyi lingvistiki sho doslidzhuye mozkovi mehanizmi movlennyevoyi diyalnosti a takozh zmini u procesah movlennya sho vinikayut pri urazhennyah mozku 152 div takozh Psiholingvistika Doslidzhennya pokazali sho vivchennya movi ta praktika mozhut prizvesti do zmin u strukturi ta funkciyah cih oblastej mozku a takozh do zmin u zv yazku mizh nimi Napriklad doslidzhennya viyavili sho vivchennya drugoyi movi mozhe prizvesti do zbilshennya obsyagu siroyi rechovini v movnih oblastyah mozku a takozh do zmin u traktah biloyi rechovini yaki z yednuyut ci oblasti 153 Nejroplastichnist takozh vidigraye vazhlivu rol u vidnovlenni vid movnih rozladiv takih yak afaziya yaka mozhe viniknuti pislya insultu chi inshoyi travmi golovnogo mozku Dovedeno sho pidhodi do terapiyi taki yak terapiya afaziyi viklikanoyi primusom i melodijna intonacijna terapiya viklikayut nejroplastichni zmini v mozku sho prizvodit do pokrashennya movnoyi funkciyi 154 155 156 Nejrokibernetika ta nejroinzheneriya Redaguvati Nejrokibernetika ce naukova disciplina yaka poyednuye principi nejronauki kibernetiki biokibernetiki ta informatiki dlya rozrobki modelej i algoritmiv dlya rozuminnya ta kontrolyu povedinki nejronnih sistem U konteksti nejroplastichnosti nejrokibernetiku mozhna vikoristovuvati dlya vivchennya togo yak nejronni lancyugi mozku adaptuyutsya ta reorganizuyutsya u vidpovid na dosvid i navchannya V praktichnij diyalnosti nejrokibernetika tisno pov yazana z nejroinzheneriyeyu 157 Nejroinzheneriya ce naukova disciplina yaka poyednuye nejronauchni ta biomedichno inzhenerni metodi j pidhodi dlya rozuminnya vidnovlennya zamini pokrashennya abo vikoristannya vlastivostej nejronnih sistem a takozh dlya rozrobki rishen dlya problem pov yazanih z nevrologichnimi obmezhennyami ta disfunkciyeyu 158 Odnim iz klyuchovih napryamiv doslidzhen u nejrokibernetici ta nejroinzheneriyi pov yazanih iz nejroplastichnistyu ye rozrobka nejronnih interfejsiv iz zamknutim ciklom yaki vikoristovuyut zvorotnij zv yazok vid mozku v realnomu chasi dlya zmini dostavki sensornoyi chi motornoyi stimulyaciyi Napriklad vikoristannya nejronnih interfejsiv zamknutogo ciklu dlya zabezpechennya zvorotnogo zv yazku u osib z obmezhenimi ruhovimi mozhlivostyami pid chas reabilitacijnih vprav sho mozhe pidvishiti plastichnist ruhovih merezh i pokrashiti funkcionalni rezultati 159 160 161 162 Inshim napryamkom doslidzhen u nejrokibernetici ta nejroinzheneriyi pov yazanih iz nejroplastichnistyu ye vikoristannya nejrokomp yuternih interfejsiv NKI dlya spriyannya nejroplastichnosti ta vidnovlennya pislya travm golovnogo mozku NKI dozvolyaye lyudyam keruvati zovnishnimi pristroyami takimi yak protezi kincivok abo komp yuterni kursori vikoristovuyuchi nejronni signali zapisani z mozku Zabezpechuyuchi mozok zvorotnim zv yazkom shodo uspihu chi nevdachi cih ruhiv NKI mozhe spriyati zrostannyu ta zmicnennyu nejronnih merezh zaluchenih do motornogo kontrolyu ta navchannya 163 164 165 166 167 She odin napryamok doslidzhen rozrobka zamknutih sistem nejromodulyaciyi v yakih nervova stimulyaciya dostavlyayetsya u vidpovid na zvorotnij zv yazok vid mozku v realnomu chasi Napriklad doslidniki mozhut vikoristovuvati nejromodulyaciyu iz zamknutim konturom dlya pidvishennya plastichnosti nejronnih merezh zaluchenih do pam yati ta navchannya sho mozhe mati zastosuvannya dlya likuvannya kognitivnih rozladiv takih yak hvoroba Alcgejmera 168 169 Inzheneriya nervovoyi tkanini Redaguvati Inzheneriya nervovoyi tkanini ce mizhdisciplinarna galuz sho poyednuye v sobi principi biomedichnoyi inzheneriyi nejronauki materialoznavstva a takozh klitinnoyi ta molekulyarnoyi biologiyi Meta inzheneriyi nervovoyi tkanini vidnovlennya pidtrimka ta pokrashennya funkcionalnosti nervovoyi sistemi yaki buli vtracheni cherez travmu hvorobu chi vik z metoyu spriyannya nejroplastichnosti zdatnosti mozku zminyuvatisya ta adaptuvatisya Cerebralni organoyidi lyudini z klitin lyudskogo mozku pid chas rozvitku Organoyidi golovnogo mozku takozh vidomi yak cerebralni organoyidi abo mini mozki ce trivimirni modeli klitinnoyi kulturi otrimani z plyuripotentnih stovburovih klitin yaki povtoryuyut deyaki aspekti funkcionuvannya ta rozvitku lyudskogo mozku 170 171 Taki organoyidi proponuyut platformu in vitro dlya vivchennya skladnih procesiv zokrema nejroplastichnosti Mozok lyudini sho rozvivayetsya demonstruye visokij stupin plastichnosti sho dozvolyaye jomu adaptuvati svoyu strukturu ta funkciyi u vidpovid na podrazniki abo poshkodzhennya Organoyidi mozku buli vikoristani yak modeli dlya sposterezhennya cih yavish u kontrolovanih laboratornih umovah Voni proponuyut unikalnu mozhlivist dosliditi skladnu vzayemodiyu mizh genetikoyu navkolishnim seredovishem i nejroplastichnistyu Odniyeyu z perevag organoyidiv mozku dlya doslidzhennya nejroplastichnosti ye mozhlivist genetichno modifikuvati yih div takozh Redaguvannya genoma Genoterapiya 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nervovoyi tkanini v misci urazhennya pislya ishemichnogo insultu pokazalo 177 Cherez kilka misyaciv mi viyavili sho transplantovani organoyidi dobre vizhili v urazhenomu infarktom yadri diferenciyuvalisya v cilovi nejroni vidnovlyuvali infarktnu tkaninu posilali aksoni do viddalenih mishenej mozku ta integruvalisya v nejronnij lancyug gospodarya tim samim usuvayuchi sensomotorni defekti povedinki mishej yaki perenesli insult Doslidzhennya organoyidnogo intelektu 178 Krim togo organoyidi golovnogo mozku mozhna vikoristovuvati dlya modelyuvannya rozladiv nervovoyi sistemi ta nejrodegenerativnih rozladiv 179 180 181 182 dozvolyayuchi doslidnikam doslidzhuvati yak ci stani vplivayut na nejroplastichnist i yak spriyannya nejroplastichnosti mozhe dopomogti pom yakshiti ci rozladi ta spriyati doslidzhennyu novih likiv 183 184 personalizovanomu likuvannyu 185 ta omolodzhennyu mozku 186 187 Rozvitok nejroinzhenernih nanotehnologij nanomateriali nanosensori biomolekulyarna elektronika mozhe spriyati uspiham v doslidzhennyah na cerebralnih organoyidah 188 189 Na organoyidah mozhku takozh doslidzhuyetsya tak zvanij orginoyidnij intelekt OI nejronni merezhi z spravzhnih zhivih nejroniv organoyidiv Biobchislyuvalni sistemi na osnovi OI mayut potencial dlya shvidshogo prijnyattya rishen bezperervnogo navchannya pid chas vikonannya zavdan i bilshoyi efektivnosti vikoristannya energiyi ta danih nizh obchislennya na osnovi kremniyu ta shtuchnogo intelektu Rozvitok OI mozhe pokrashiti nashe rozuminnya nejroplastichnosti rozvitku mozku navchannya pam yati ta potencijno dopomozhe znajti likuvannya nevrologichnih rozladiv takih yak demenciya OI vklyuchaye zbilshennya organoyidiv mozku v skladni micni 3D strukturi zbagacheni klitinami ta genami pov yazanimi z navchannyam pidklyuchennya yih do pristroyiv vvedennya ta vivedennya nastupnogo pokolinnya ta sistem ShI mashinnogo navchannya Dlya cogo potribni novi modeli algoritmi ta tehnologiyi interfejsu shob spilkuvatisya z organoyidami 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