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9.A.15.2.1
The autophagy protein complex.  The molecular mechanisms of autophagy have been reviewed (Hurley and Young 2017; Dupont et al. 2017). Autophagy is related to apoptosis and autoimmunity (Song et al. 2017; Wu and Adamopoulos 2017).  It is an intracellular degradation process carried out by a double-membrane organelle, termed the autophagosome (Molino et al. 2017). Three proteins (TM9SF1 (TC#8.A.68.1.13), TMEM166 (listed here) and TMEM74 (TC# 9.B.189.2.1)) regulate autophagosome formation (He et al. 2009). The generation of Atg9 vesicles from a Rab11-positive reservoir is tightly controlled by the Bif-1-DNM2 membrane fission machinery in response to cellular demand for autophagy. ATG9A is essential for multiple steps of epithelial tight junction biogenesis and actin cytoskeletal regulation (Dowdell et al. 2020).  Autophagy involves capture of cytoplasmic materials into double-membraned autophagosomes that subsequently fuse with lysosomes for degradation of the materials by lysosomal hydrolases. The cryoelectron microscopy structure of the human ATG9A isoform at 2.9-Å resolution has been solved (Guardia et al. 2020). The structure reveals a fold with a homotrimeric domain-swapped architecture, multiple membrane spans, and a network of branched cavities, consistent with ATG9A being a membrane transporter. Mutational analyses support a role for the cavities in the function of ATG9A. Structure-guided molecular simulations predict that ATG9A causes membrane bending, explaining the localization of this protein to small vesicles and highly curved edges of growing autophagosomes (Guardia et al. 2020). The mechanism of Atg9 recruitment by Atg11 in the cytoplasm-to-vacuole targeting pathway has been examined (Coudevylle et al. 2022). Autophagosomes form de novo, but how is poorly understood. Particularly enigmatic are autophagy-related protein 9 (Atg9)-containing vesicles that are required for autophagy machinery assembly but do not supply the bulk of the autophagosomal membrane. Sawa-Makarska et al. 2020 reconstituted autophagosome nucleation using recombinant components from yeast. They found that Atg9 proteoliposomes first recruited the phosphatidylinositol 3-phosphate kinase complex, followed by Atg21, the Atg2-Atg18 lipid transfer complex, and the E3-like Atg12-Atg5-Atg16 complex, which promoted Atg8 lipidation. They found that Atg2 could transfer lipids for Atg8 lipidation. In selective autophagy, these reactions could potentially be coupled to cargo via Atg19-Atg11-Atg9 interactions. They proposed that Atg9 vesicles form seeds that establish membrane contact sites to initiate lipid transfer from compartments such as the endoplasmic reticulum (Sawa-Makarska et al. 2020). Drosophila Atg9 regulates the actin cytoskeleton via interactions with profilin and Ena (Kiss et al. 2020). RUSC2 and WDR47 oppositely regulate kinesin-1-dependent distribution of ATG9A to the cell periphery (Guardia et al. 2021).  The adaptor protein chaperone AAGAB (TC family 8.A.203) stabilizes AP-4 complex subunits (Mattera et al. 2022).     The cryoelectron microscopy structure of the human ATG9A isoform at 2.9-Å resolution has been solved (Guardia et al. 2020). The structure reveals a fold with a homotrimeric domain-swapped architecture, multiple membrane spans, and a network of branched cavities, consistent with ATG9A being a membrane transporter. Mutational analyses support a role for the cavities in the function of ATG9A. Structure-guided molecular simulations predict that ATG9A causes membrane bending, explaining the localization of this protein to small vesicles and highly curved edges of growing autophagosomes (Guardia et al. 2020). Both GLUT2 and GLUT3 have been expressed in yeast and exhibit most of the characteristics of the proteins expressed in humans (Schmidl et al. 2020). WDR45 variants are a major cause of a clinically variable intellectual disability syndrome from early infancy in females (Abe-Hatano et al. 2024).  

Accession Number:Q96BY7
Protein Name:Autophagy-related protein 2 homolog B
Length:2078
Molecular Weight:232763.00
Species:Homo sapiens (Human) [9606]
Location1 / Topology2 / Orientation3: Preautophagosomal structure membrane1 / Peripheral membrane protein2
Substrate

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FASTA formatted sequence
1:	MPWPFSESIK KRACRYLLQR YLGHFLQEKL SLEQLSLDLY QGTGSLAQVP LDKWCLNEIL 
61:	ESADAPLEVT EGFIQSISLS VPWGSLLQDN CALEVRGLEM VFRPRPRPAT GSEPMYWSSF 
121:	MTSSMQLAKE CLSQKLTDEQ GEGSQPFEGL EKFAETIETV LRRVKVTFID TVLRIEHVPE 
181:	NSKTGTALEI RIERTVYCDE TADESSGINV HQPTAFAHKL LQLSGVSLFW DEFSASAKSS 
241:	PVCSTAPVET EPKLSPSWNP KIIYEPHPQL TRNLPEIAPS DPVQIGRLIG RLELSLTLKQ 
301:	NEVLPGAKLD VDGQIDSIHL LLSPRQVHLL LDMLAAIAGP ENSSKIGLAN KDRKNRPMQQ 
361:	EDEYRIQMEL NRYYLRKDSL SVGVSSEQSF YETETARTPS SREEEVFFSM ADMDMSHSLS 
421:	SLPPLGDPPN MDLELSLTST YTNTPAGSPL SATVLQPTWG EFLDHHKEQP VRGSTFPSNL 
481:	VHPTPLQKTS LPSRSVSVDE SRPELIFRLA VGTFSISVLH IDPLSPPETS QNLNPLTPMA 
541:	VAFFTCIEKI DPARFSTEDF KSFRAVFAEA CSHDHLRFIG TGIKVSYEQR QRSASRYFST 
601:	DMSIGQMEFL ECLFPTDFHS VPPHYTELLT FHSKEETGSH SPVCLQLHYK HSENRGPQGN 
661:	QARLSSVPHK AELQIKLNPV CCELDISIVD RLNSLLQPQK LATVEMMASH MYTSYNKHIS 
721:	LHKAFTEVFL DDSHSPANCR ISVQVATPAL NLSVRFPIPD LRSDQERGPW FKKSLQKEIL 
781:	YLAFTDLEFK TEFIGGSTPE QIKLELTFRE LIGSFQEEKG DPSIKFFHVS SGVDGDTTSS 
841:	DDFDWPRIVL KINPPAMHSI LERIAAEEEE ENDGHYQEEE EGGAHSLKDV CDLRRPAPSP 
901:	FSSRRVMFEN EQMVMPGDPV EMTEFQDKAI SNSHYVLELT LPNIYVTLPN KSFYEKLYNR 
961:	IFNDLLLWEP TAPSPVETFE NISYGIGLSV ASQLINTFNK DSFSAFKSAV HYDEESGSEE 
1021:	ETLQYFSTVD PNYRSRRKKK LDSQNKNSQS FLSVLLNINH GLIAVFTDVK QDNGDLLENK 
1081:	HGEFWLEFNS GSLFCVTKYE GFDDKHYICL HSSSFSLYHK GIVNGVILPT ETRLPSSTRP 
1141:	HWLEPTIYSS EEDGLSKTSS DGVGGDSLNM LSVAVKILSD KSESNTKEFL IAVGLKGATL 
1201:	QHRMLPSGLS WHEQILYFLN IADEPVLGYN PPTSFTTFHV HLWSCALDYR PLYLPIRSLL 
1261:	TVETFSVSSS VALDKSSSTL RIILDEAALH LSDKCNTVTI NLSRDYVRVM DMGLLELTIT 
1321:	AVKSDSDGEQ TEPRFELHCS SDVVHIRTCS DSCAALMNLI QYIASYGDLQ TPNKADMKPG 
1381:	AFQRRSKVDS SGRSSSRGPV LPEADQQMLR DLMSDAMEEI DMQQGTSSVK PQANGVLDEK 
1441:	SQIQEPCCSD LFLFPDESGN VSQESGPTYA SFSHHFISDA MTGVPTENDD FCILFAPKAA 
1501:	MQEKEEEPVI KIMVDDAIVI RDNYFSLPVN KTDTSKAPLH FPIPVIRYVV KEVSLVWHLY 
1561:	GGKDFGIVPP TSPAKSYISP HSSPSHTPTR HGRNTVCGGK GRNHDFLMEI QLSKVKFQHE 
1621:	VYPPCKPDCD SSLSEHPVSR QVFIVQDLEI RDRLATSQMN KFLYLYCSKE MPRKAHSNML 
1681:	TVKALHVCPE SGRSPQECCL RVSLMPLRLN IDQDALFFLK DFFTSLSAEV ELQMTPDPEV 
1741:	KKSPGADVTC SLPRHLSTSK EPNLVISFSG PKQPSQNDSA NSVEVVNGME EKNFSAEEAS 
1801:	FRDQPVFFRE FRFTSEVPIR LDYHGKHVSM DQGTLAGILI GLAQLNCSEL KLKRLSYRHG 
1861:	LLGVDKLFSY AITEWLNDIK KNQLPGILGG VGPMHSLVQL VQGLKDLVWL PIEQYRKDGR 
1921:	IVRGFQRGAA SFGTSTAMAA LELTNRMVQT IQAAAETAYD MVSPGTLSIE PKKTKRFPHH 
1981:	RLAHQPVDLR EGVAKAYSVV KEGITDTAQT IYETAAREHE SRGVTGAVGE VLRQIPPAVV 
2041:	KPLIVATEAT SNVLGGMRNQ IRPDVRQDES QKWRHGDD