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Structural determinants specific for retromer protein sorting nexin 5 in regulating subcellular retrograde membrane trafficking

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摘要 The endosomal trafficking of signaling membrane proteins, such as receptors, transporters and channels, is mediated by the retromer-mediated sorting machinery, composed of a cargo-selective vacuolar protein sorting trimer and a membrane-deforming subunit of sorting nexin proteins. Recent studies have shown that the isoforms, sorting nexin 5 (SNX5) and SNX6, have played distinctive regulatory roles in retrograde membrane trafficking. However, the molecular insight determined functional differences within the proteins remains unclear. We reported that SNX5 and SNX6 had distinct binding affinity to the cargo protein vesicular monoamine transporter 2 (VMAT2). SNX5, but not SNX6, specifically interacted with VMAT2 through the Phox domain, which contains an alpha-helix binding motif. Using chimeric mutagenesis, we identified that several key residues within this domain were unique in SNX5, but not SNX6, and played an auxiliary role in its binding to VMAT2. Importantly, we generated a set of mutant SNX6, in which the corresponding key residues were mutated to those in SNX5. In addition to the gain in binding affinity to VMAT2, their overexpression functionally rescued the altered retrograde trafficking of VMAT2 induced by siRNA-mediated depletion of SNX5. These data strongly suggest that SNX5 and SNX6 have different functions in retrograde membrane trafficking, which is determined by the different structural elements within the Phox domain of two proteins. Our work provides a new information on the role of SNX5 and SNX6 in the molecular regulation of retrograde membrane trafficking and vesicular membrane targeting in monoamine neurotransmission and neurological diseases.
出处 《The Journal of Biomedical Research》 CAS CSCD 2023年第6期492-506,共15页 生物医学研究杂志(英文版)
基金 This work was supported by the National Natural Science Foundation of China(Grant Nos.31371436 and 8157051134 to Y.L.) by the laboratory start-up grant from Nanjing Medical University(to Y.L.).
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  • 1Schroer TA. Dynactin. Annu Rev Cell Dev Biol 2004; 20:759- 779.
  • 2King S J, Schroer TA. Dynactin increases the processivity of the cytoplasmic dynein motor. Nat Cell Biol 2000; 2:20-24.
  • 3Reinsch S, Karsenti E. Movement of nuclei along microtubules in Xenopus egg extracts. Curr Biol 1997; 7:211-214.
  • 4Duncan JE, Goldstein LS. The genetics of axonal transport and axonal transport disorders. PLoS Genet 2006; 2:e124.
  • 5Vale RD. The molecular motor toolbox for intracellular transport. Cell 2003; 112:467-480.
  • 6Hoogenraad CC, Akhmanova A, Howell SA, et al. Mammalian Golgi-associated Bicaudal-D2 functions in the dyneindynactin pathway by interacting with these complexes. EMBO J 2001; 20:4041-4054.
  • 7Hoogenraad CC, Wulf P, Schiefermeier N, et al. Bicaudal D induces selective dynein-mediated microtubule minus end- directed transport. EMBO J 2003; 22:6004-6015.
  • 8Matanis T, Akhmanova A, Wulf P, et al. Bicaudal-D regulates COPI-independent Golgi-ER transport by recruiting the dynein-dynactin motor complex. Nat Cell Biol 2002; 4:986- 992.
  • 9Holleran EA, Ligon LA, Tokito M, et al. Beta III spectrin binds to the Arpl subunit of dynactin. J Biol Chem 2001; 276:36598-36605.
  • 10Engelender S, Sharp AH, Colomer V, et al. Huntingtin-associated protein 1 (HAP 1) interacts with the p 150^Ghaed subunit of dynactin. Hum Mol Genet 1997; 6:2205-2212.

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