3haj Citations

Molecular mechanism of membrane constriction and tubulation mediated by the F-BAR protein Pacsin/Syndapin.

Proc Natl Acad Sci U S A 106 12700-5 (2009)
Related entries: 3hah, 3hai

Cited: 137 times
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Abstract

Peripheral membrane proteins of the Bin/amphiphysin/Rvs (BAR) and Fer-CIP4 homology-BAR (F-BAR) family participate in cellular membrane trafficking and have been shown to generate membrane tubules. The degree of membrane bending appears to be encoded in the structure and immanent curvature of the particular protein domains, with BAR and F-BAR domains inducing high- and low-curvature tubules, respectively. In addition, oligomerization and the formation of ordered arrays influences tubule stabilization. Here, the F-BAR domain-containing protein Pacsin was found to possess a unique activity, creating small tubules and tubule constrictions, in addition to the wide tubules characteristic for this subfamily. Based on crystal structures of the F-BAR domain of Pacsin and mutagenesis studies, vesiculation could be linked to the presence of unique structural features distinguishing it from other F-BAR proteins. Tubulation was suppressed in the context of the full-length protein, suggesting that Pacsin is autoinhibited in solution. The regulated deformation of membranes and promotion of tubule constrictions by Pacsin suggests a more versatile function of these proteins in vesiculation and endocytosis beyond their role as scaffold proteins.

Articles - 3haj mentioned but not cited (3)

  1. Molecular mechanism of membrane constriction and tubulation mediated by the F-BAR protein Pacsin/Syndapin. Wang Q, Navarro MV, Peng G, Molinelli E, Goh SL, Judson BL, Rajashankar KR, Sondermann H. Proc Natl Acad Sci U S A 106 12700-12705 (2009)
  2. HIV-1 packs in PACSIN2 for cell-to-cell spread. Van Duyne R, Freed EO. Proc Natl Acad Sci U S A 115 6885-6887 (2018)
  3. The dipeptidyl peptidase IV inhibitors vildagliptin and K-579 inhibit a phospholipase C: a case of promiscuous scaffolds in proteins. Chakraborty S, Rendón-Ramírez A, Ásgeirsson B, Dutta M, Ghosh AS, Oda M, Venkatramani R, Rao BJ, Dandekar AM, Goñi FM. F1000Res 2 286 (2013)


Reviews citing this publication (35)

  1. Dynamin, a membrane-remodelling GTPase. Ferguson SM, De Camilli P. Nat Rev Mol Cell Biol 13 75-88 (2012)
  2. Synaptic vesicle endocytosis. Saheki Y, De Camilli P. Cold Spring Harb Perspect Biol 4 a005645 (2012)
  3. To degrade or not to degrade: mechanisms and significance of endocytic recycling. Cullen PJ, Steinberg F. Nat Rev Mol Cell Biol 19 679-696 (2018)
  4. Thermodynamics and mechanics of membrane curvature generation and sensing by proteins and lipids. Baumgart T, Capraro BR, Zhu C, Das SL. Annu Rev Phys Chem 62 483-506 (2011)
  5. Let's go bananas: revisiting the endocytic BAR code. Qualmann B, Koch D, Kessels MM. EMBO J 30 3501-3515 (2011)
  6. Clostridium difficile Toxin Biology. Aktories K, Schwan C, Jank T. Annu Rev Microbiol 71 281-307 (2017)
  7. Subcellular membrane curvature mediated by the BAR domain superfamily proteins. Suetsugu S, Toyooka K, Senju Y. Semin Cell Dev Biol 21 340-349 (2010)
  8. Dynamic shaping of cellular membranes by phospholipids and membrane-deforming proteins. Suetsugu S, Kurisu S, Takenawa T. Physiol Rev 94 1219-1248 (2014)
  9. Membrane shaping by the Bin/amphiphysin/Rvs (BAR) domain protein superfamily. Rao Y, Haucke V. Cell Mol Life Sci 68 3983-3993 (2011)
  10. The structure and function of endophilin proteins. Kjaerulff O, Brodin L, Jung A. Cell Biochem Biophys 60 137-154 (2011)
  11. BAR domain proteins-a linkage between cellular membranes, signaling pathways, and the actin cytoskeleton. Carman PJ, Dominguez R. Biophys Rev 10 1587-1604 (2018)
  12. Structural characteristics of BAR domain superfamily to sculpt the membrane. Masuda M, Mochizuki N. Semin Cell Dev Biol 21 391-398 (2010)
  13. Membrane-associated cargo recycling by tubule-based endosomal sorting. van Weering JR, Cullen PJ. Semin Cell Dev Biol 31 40-47 (2014)
  14. Vesicle scission: dynamin. Ramachandran R. Semin Cell Dev Biol 22 10-17 (2011)
  15. Revisiting the Role of Clathrin-Mediated Endoytosis in Synaptic Vesicle Recycling. Milosevic I. Front Cell Neurosci 12 27 (2018)
  16. Deciphering the BAR code of membrane modulators. Salzer U, Kostan J, Djinović-Carugo K. Cell Mol Life Sci 74 2413-2438 (2017)
  17. Syndapin--a membrane remodelling and endocytic F-BAR protein. Quan A, Robinson PJ. FEBS J 280 5198-5212 (2013)
  18. Clostridium difficile toxins A and B: Receptors, pores, and translocation into cells. Orrell KE, Zhang Z, Sugiman-Marangos SN, Melnyk RA. Crit Rev Biochem Mol Biol 52 461-473 (2017)
  19. Regulating dynamin dynamics during endocytosis. Sundborger AC, Hinshaw JE. F1000Prime Rep 6 85 (2014)
  20. Linking up at the BAR: Oligomerization and F-BAR protein function. McDonald NA, Gould KL. Cell Cycle 15 1977-1985 (2016)
  21. Attachment of rod-like (BAR) proteins and membrane shape. Kabaso D, Gongadze E, Elter P, van Rienen U, Gimsa J, Kralj-Iglič V, Iglič A. Mini Rev Med Chem 11 272-282 (2011)
  22. Exosomes: The Link between GPCR Activation and Metastatic Potential? Isola AL, Chen S. Front Genet 7 56 (2016)
  23. Phosphoinositide-binding interface proteins involved in shaping cell membranes. Takenawa T. Proc Jpn Acad Ser B Phys Biol Sci 86 509-523 (2010)
  24. Tau Protein Interaction Partners and Their Roles in Alzheimer's Disease and Other Tauopathies. Sinsky J, Pichlerova K, Hanes J. Int J Mol Sci 22 9207 (2021)
  25. Keeping in touch with the membrane; protein- and lipid-mediated confinement of caveolae to the cell surface. Hubert M, Larsson E, Lundmark R. Biochem Soc Trans 48 155-163 (2020)
  26. The emerging role of phosphoinositide clustering in intracellular trafficking and signal transduction. Picas L, Gaits-Iacovoni F, Goud B. F1000Res 5 F1000 Faculty Rev-422 (2016)
  27. BAR domain competition during directional cellular migration. Quiñones GA, Oro AE. Cell Cycle 9 2522-2528 (2010)
  28. Higher-order assemblies of BAR domain proteins for shaping membranes. Suetsugu S. Microscopy (Oxf) 65 201-210 (2016)
  29. The state of F-BAR domains as membrane-bound oligomeric platforms. Snider CE, Wan Mohamad Noor WNI, Nguyen NTH, Gould KL, Suetsugu S. Trends Cell Biol 31 644-655 (2021)
  30. Activation Mechanisms of the VPS34 Complexes. Ohashi Y. Cells 10 3124 (2021)
  31. Membrane remodeling by amyloidogenic and non-amyloidogenic proteins studied by EPR. Varkey J, Langen R. J Magn Reson 280 127-139 (2017)
  32. PACSIN proteins in vivo: Roles in development and physiology. Dumont V, Lehtonen S. Acta Physiol (Oxf) 234 e13783 (2022)
  33. Barfly: sculpting membranes at the Drosophila neuromuscular junction. Oh E, Robinson I. Dev Neurobiol 72 33-56 (2012)
  34. Insights into Membrane Curvature Sensing and Membrane Remodeling by Intrinsically Disordered Proteins and Protein Regions. Has C, Sivadas P, Das SL. J Membr Biol 255 237-259 (2022)
  35. Dynamins and BAR Proteins-Safeguards against Cancer. Sundborger AC, Hinshaw JE. Crit Rev Oncog 20 475-484 (2015)

Articles citing this publication (99)

  1. A high precision survey of the molecular dynamics of mammalian clathrin-mediated endocytosis. Taylor MJ, Perrais D, Merrifield CJ. PLoS Biol 9 e1000604 (2011)
  2. Syp1 is a conserved endocytic adaptor that contains domains involved in cargo selection and membrane tubulation. Reider A, Barker SL, Mishra SK, Im YJ, Maldonado-Báez L, Hurley JH, Traub LM, Wendland B. EMBO J 28 3103-3116 (2009)
  3. Molecular basis for SNX-BAR-mediated assembly of distinct endosomal sorting tubules. van Weering JR, Sessions RB, Traer CJ, Kloer DP, Bhatia VK, Stamou D, Carlsson SR, Hurley JH, Cullen PJ. EMBO J 31 4466-4480 (2012)
  4. Spontaneous tubulation of membranes and vesicles reveals membrane tension generated by spontaneous curvature. Lipowsky R. Faraday Discuss 161 305-31; discussion 419-59 (2013)
  5. Molecular basis for SH3 domain regulation of F-BAR-mediated membrane deformation. Rao Y, Ma Q, Vahedi-Faridi A, Sundborger A, Pechstein A, Puchkov D, Luo L, Shupliakov O, Saenger W, Haucke V. Proc Natl Acad Sci U S A 107 8213-8218 (2010)
  6. Dephosphorylation of F-BAR protein Cdc15 modulates its conformation and stimulates its scaffolding activity at the cell division site. Roberts-Galbraith RH, Ohi MD, Ballif BA, Chen JS, McLeod I, McDonald WH, Gygi SP, Yates JR, Gould KL. Mol Cell 39 86-99 (2010)
  7. Phosphatidylinositol-4,5-biphosphate-dependent rearrangement of TRPV4 cytosolic tails enables channel activation by physiological stimuli. Garcia-Elias A, Mrkonjic S, Pardo-Pastor C, Inada H, Hellmich UA, Rubio-Moscardó F, Plata C, Gaudet R, Vicente R, Valverde MA. Proc Natl Acad Sci U S A 110 9553-9558 (2013)
  8. Cooperation of MICAL-L1, syndapin2, and phosphatidic acid in tubular recycling endosome biogenesis. Giridharan SS, Cai B, Vitale N, Naslavsky N, Caplan S. Mol Biol Cell 24 1776-90, S1-15 (2013)
  9. Phosphorylation-dependent regulation of the F-BAR protein Hof1 during cytokinesis. Meitinger F, Boehm ME, Hofmann A, Hub B, Zentgraf H, Lehmann WD, Pereira G. Genes Dev 25 875-888 (2011)
  10. F-BAR proteins of the syndapin family shape the plasma membrane and are crucial for neuromorphogenesis. Dharmalingam E, Haeckel A, Pinyol R, Schwintzer L, Koch D, Kessels MM, Qualmann B. J Neurosci 29 13315-13327 (2009)
  11. Distinct roles for F-BAR proteins Cdc15p and Bzz1p in actin polymerization at sites of endocytosis in fission yeast. Arasada R, Pollard TD. Curr Biol 21 1450-1459 (2011)
  12. Sar1 assembly regulates membrane constriction and ER export. Long KR, Yamamoto Y, Baker AL, Watkins SC, Coyne CB, Conway JF, Aridor M. J Cell Biol 190 115-128 (2010)
  13. Membrane sculpting by curved DNA origami scaffolds. Franquelim HG, Khmelinskaia A, Sobczak JP, Dietz H, Schwille P. Nat Commun 9 811 (2018)
  14. Proper synaptic vesicle formation and neuronal network activity critically rely on syndapin I. Koch D, Spiwoks-Becker I, Sabanov V, Sinning A, Dugladze T, Stellmacher A, Ahuja R, Grimm J, Schüler S, Müller A, Angenstein F, Ahmed T, Diesler A, Moser M, Tom Dieck S, Spessert R, Boeckers TM, Fässler R, Hübner CA, Balschun D, Gloveli T, Kessels MM, Qualmann B. EMBO J 30 4955-4969 (2011)
  15. Structural basis of wedging the Golgi membrane by FAPP pleckstrin homology domains. Lenoir M, Coskun U, Grzybek M, Cao X, Buschhorn SB, James J, Simons K, Overduin M. EMBO Rep 11 279-284 (2010)
  16. Mapping of the basic amino-acid residues responsible for tubulation and cellular protrusion by the EFC/F-BAR domain of pacsin2/Syndapin II. Shimada A, Takano K, Shirouzu M, Hanawa-Suetsugu K, Terada T, Toyooka K, Umehara T, Yamamoto M, Yokoyama S, Suetsugu S. FEBS Lett 584 1111-1118 (2010)
  17. Oligomerization but Not Membrane Bending Underlies the Function of Certain F-BAR Proteins in Cell Motility and Cytokinesis. McDonald NA, Vander Kooi CW, Ohi MD, Gould KL. Dev Cell 35 725-736 (2015)
  18. The F-BAR domains from srGAP1, srGAP2 and srGAP3 regulate membrane deformation differently. Coutinho-Budd J, Ghukasyan V, Zylka MJ, Polleux F. J Cell Sci 125 3390-3401 (2012)
  19. Dual role of BAR domain-containing proteins in regulating vesicle release catalyzed by the GTPase, dynamin-2. Neumann S, Schmid SL. J Biol Chem 288 25119-25128 (2013)
  20. PACSIN2 polymorphism influences TPMT activity and mercaptopurine-related gastrointestinal toxicity. Stocco G, Yang W, Crews KR, Thierfelder WE, Decorti G, Londero M, Franca R, Rabusin M, Valsecchi MG, Pei D, Cheng C, Paugh SW, Ramsey LB, Diouf B, McCorkle JR, Jones TS, Pui CH, Relling MV, Evans WE. Hum Mol Genet 21 4793-4804 (2012)
  21. Protein-mediated transformation of lipid vesicles into tubular networks. Simunovic M, Mim C, Marlovits TC, Resch G, Unger VM, Voth GA. Biophys J 105 711-719 (2013)
  22. Ral mediates activity-dependent growth of postsynaptic membranes via recruitment of the exocyst. Teodoro RO, Pekkurnaz G, Nasser A, Higashi-Kovtun ME, Balakireva M, McLachlan IG, Camonis J, Schwarz TL. EMBO J 32 2039-2055 (2013)
  23. PICK1 interacts with PACSIN to regulate AMPA receptor internalization and cerebellar long-term depression. Anggono V, Koç-Schmitz Y, Widagdo J, Kormann J, Quan A, Chen CM, Robinson PJ, Choi SY, Linden DJ, Plomann M, Huganir RL. Proc Natl Acad Sci U S A 110 13976-13981 (2013)
  24. The functions of the actin nucleator Cobl in cellular morphogenesis critically depend on syndapin I. Schwintzer L, Koch N, Ahuja R, Grimm J, Kessels MM, Qualmann B. EMBO J 30 3147-3159 (2011)
  25. A novel patch assembly domain in Num1 mediates dynein anchoring at the cortex during spindle positioning. Tang X, Germain BS, Lee WL. J Cell Biol 196 743-756 (2012)
  26. The proposed functions of membrane curvatures mediated by the BAR domain superfamily proteins. Suetsugu S. J Biochem 148 1-12 (2010)
  27. Spontaneous curvature of bilayer membranes from molecular simulations: asymmetric lipid densities and asymmetric adsorption. Różycki B, Lipowsky R. J Chem Phys 142 054101 (2015)
  28. Direct interaction of actin filaments with F-BAR protein pacsin2. Kostan J, Salzer U, Orlova A, Törö I, Hodnik V, Senju Y, Zou J, Schreiner C, Steiner J, Meriläinen J, Nikki M, Virtanen I, Carugo O, Rappsilber J, Lappalainen P, Lehto VP, Anderluh G, Egelman EH, Djinović-Carugo K. EMBO Rep 15 1154-1162 (2014)
  29. FlnA binding to PACSIN2 F-BAR domain regulates membrane tubulation in megakaryocytes and platelets. Begonja AJ, Pluthero FG, Suphamungmee W, Giannini S, Christensen H, Leung R, Lo RW, Nakamura F, Lehman W, Plomann M, Hoffmeister KM, Kahr WH, Hartwig JH, Falet H. Blood 126 80-88 (2015)
  30. Identification and functional characterization of liposome tubulation protein from magnetotactic bacteria. Tanaka M, Arakaki A, Matsunaga T. Mol Microbiol 76 480-488 (2010)
  31. Multiple modes of endophilin-mediated conversion of lipid vesicles into coated tubes: implications for synaptic endocytosis. Mizuno N, Jao CC, Langen R, Steven AC. J Biol Chem 285 23351-23358 (2010)
  32. Structural requirements for PACSIN/Syndapin operation during zebrafish embryonic notochord development. Edeling MA, Sanker S, Shima T, Umasankar PK, Höning S, Kim HY, Davidson LA, Watkins SC, Tsang M, Tsang M, Owen DJ, Traub LM. PLoS One 4 e8150 (2009)
  33. PACSIN 2 represses cellular migration through direct association with cyclin D1 but not its alternate splice form cyclin D1b. Meng H, Tian L, Zhou J, Li Z, Jiao X, Li WW, Plomann M, Xu Z, Lisanti MP, Wang C, Pestell RG. Cell Cycle 10 73-81 (2011)
  34. FBAR syndapin 1 recognizes and stabilizes highly curved tubular membranes in a concentration dependent manner. Ramesh P, Baroji YF, Reihani SN, Stamou D, Oddershede LB, Bendix PM. Sci Rep 3 1565 (2013)
  35. Membrane tubule formation by banana-shaped proteins with or without transient network structure. Noguchi H. Sci Rep 6 20935 (2016)
  36. PACSIN1 regulates the dynamics of AMPA receptor trafficking. Widagdo J, Fang H, Jang SE, Anggono V. Sci Rep 6 31070 (2016)
  37. Structural insights into membrane interaction and caveolar targeting of dynamin-like EHD2. Shah C, Hegde BG, Morén B, Behrmann E, Mielke T, Moenke G, Spahn CMT, Lundmark R, Daumke O, Langen R. Structure 22 409-420 (2014)
  38. Structural insights into the activation mechanism of dynamin-like EHD ATPases. Melo AA, Hegde BG, Shah C, Larsson E, Isas JM, Kunz S, Lundmark R, Langen R, Daumke O. Proc Natl Acad Sci U S A 114 5629-5634 (2017)
  39. Drosophila F-BAR protein Syndapin contributes to coupling the plasma membrane and contractile ring in cytokinesis. Takeda T, Robinson IM, Savoian MM, Griffiths JR, Whetton AD, McMahon HT, Glover DM. Open Biol 3 130081 (2013)
  40. Investigation of F-BAR domain PACSIN proteins uncovers membrane tubulation function in cilia assembly and transport. Insinna C, Lu Q, Teixeira I, Harned A, Semler EM, Stauffer J, Magidson V, Tiwari A, Kenworthy AK, Narayan K, Westlake CJ. Nat Commun 10 428 (2019)
  41. The F-BAR protein PACSIN2 regulates epidermal growth factor receptor internalization. de Kreuk BJ, Anthony EC, Geerts D, Hordijk PL. J Biol Chem 287 43438-43453 (2012)
  42. Ultrastructural freeze-fracture immunolabeling identifies plasma membrane-localized syndapin II as a crucial factor in shaping caveolae. Koch D, Westermann M, Kessels MM, Qualmann B. Histochem Cell Biol 138 215-230 (2012)
  43. Formation of membrane ridges and scallops by the F-BAR protein Nervous Wreck. Becalska AN, Kelley CF, Berciu C, Stanishneva-Konovalova TB, Fu X, Wang S, Sokolova OS, Nicastro D, Rodal AA. Mol Biol Cell 24 2406-2418 (2013)
  44. Clostridium difficile Toxin A Undergoes Clathrin-Independent, PACSIN2-Dependent Endocytosis. Chandrasekaran R, Kenworthy AK, Lacy DB. PLoS Pathog 12 e1006070 (2016)
  45. ProSAP1 and membrane nanodomain-associated syndapin I promote postsynapse formation and function. Schneider K, Seemann E, Liebmann L, Ahuja R, Koch D, Westermann M, Hübner CA, Kessels MM, Qualmann B. J Cell Biol 205 197-215 (2014)
  46. Transducer of Cdc42-dependent actin assembly promotes breast cancer invasion and metastasis. Chander H, Truesdell P, Meens J, Craig AW. Oncogene 32 3080-3090 (2013)
  47. Comparison of Saccharomyces cerevisiae F-BAR domain structures reveals a conserved inositol phosphate binding site. Moravcevic K, Alvarado D, Schmitz KR, Kenniston JA, Mendrola JM, Ferguson KM, Lemmon MA. Structure 23 352-363 (2015)
  48. Coordinated autoinhibition of F-BAR domain membrane binding and WASp activation by Nervous Wreck. Stanishneva-Konovalova TB, Kelley CF, Eskin TL, Messelaar EM, Wasserman SA, Sokolova OS, Rodal AA. Proc Natl Acad Sci U S A 113 E5552-61 (2016)
  49. Membrane Charge Directs the Outcome of F-BAR Domain Lipid Binding and Autoregulation. Kelley CF, Messelaar EM, Eskin TL, Wang S, Song K, Vishnia K, Becalska AN, Shupliakov O, Hagan MF, Danino D, Sokolova OS, Nicastro D, Rodal AA. Cell Rep 13 2597-2609 (2015)
  50. Phosphorylation of syndapin I F-BAR domain at two helix-capping motifs regulates membrane tubulation. Quan A, Xue J, Wielens J, Smillie KJ, Anggono V, Parker MW, Cousin MA, Graham ME, Robinson PJ. Proc Natl Acad Sci U S A 109 3760-3765 (2012)
  51. Structural basis for membrane binding and remodeling by the exomer secretory vesicle cargo adaptor. Paczkowski JE, Fromme JC. Dev Cell 30 610-624 (2014)
  52. On the shuttling across the blood-brain barrier via tubule formation: Mechanism and cargo avidity bias. Tian X, Leite DM, Scarpa E, Nyberg S, Fullstone G, Forth J, Matias D, Apriceno A, Poma A, Duro-Castano A, Vuyyuru M, Harker-Kirschneck L, Šarić A, Zhang Z, Xiang P, Fang B, Tian Y, Luo L, Rizzello L, Battaglia G. Sci Adv 6 eabc4397 (2020)
  53. The Tubulation Activity of a Fission Yeast F-BAR Protein Is Dispensable for Its Function in Cytokinesis. McDonald NA, Takizawa Y, Feoktistova A, Xu P, Ohi MD, Vander Kooi CW, Gould KL. Cell Rep 14 534-546 (2016)
  54. TRPV4 participates in the establishment of trailing adhesions and directional persistence of migrating cells. Mrkonjić S, Garcia-Elias A, Pardo-Pastor C, Bazellières E, Trepat X, Vriens J, Ghosh D, Voets T, Vicente R, Valverde MA. Pflugers Arch 467 2107-2119 (2015)
  55. Versatile membrane deformation potential of activated pacsin. Goh SL, Wang Q, Byrnes LJ, Sondermann H. PLoS One 7 e51628 (2012)
  56. Identification of neuronal substrates implicates Pak5 in synaptic vesicle trafficking. Strochlic TI, Concilio S, Viaud J, Eberwine RA, Wong LE, Minden A, Turk BE, Plomann M, Peterson JR. Proc Natl Acad Sci U S A 109 4116-4121 (2012)
  57. The BAR Domain Superfamily Proteins from Subcellular Structures to Human Diseases. Safari F, Suetsugu S. Membranes (Basel) 2 91-117 (2012)
  58. F-BAR domain proteins: Families and function. Ahmed S, Bu W, Lee RT, Maurer-Stroh S, Goh WI. Commun Integr Biol 3 116-121 (2010)
  59. Structural Basis of TRPV4 N Terminus Interaction with Syndapin/PACSIN1-3 and PIP2. Goretzki B, Glogowski NA, Diehl E, Duchardt-Ferner E, Hacker C, Gaudet R, Hellmich UA. Structure 26 1583-1593.e5 (2018)
  60. Phagocytosis is mediated by two-dimensional assemblies of the F-BAR protein GAS7. Hanawa-Suetsugu K, Itoh Y, Ab Fatah M, Nishimura T, Takemura K, Takeshita K, Kubota S, Miyazaki N, Wan Mohamad Noor WNI, Inaba T, Nguyen NTH, Hamada-Nakahara S, Oono-Yakura K, Tachikawa M, Iwasaki K, Kohda D, Yamamoto M, Kitao A, Shimada A, Suetsugu S. Nat Commun 10 4763 (2019)
  61. Curvature sorting of proteins on a cylindrical lipid membrane tether connected to a reservoir. Singh P, Mahata P, Baumgart T, Das SL. Phys Rev E Stat Nonlin Soft Matter Phys 85 051906 (2012)
  62. PACSIN1, a Tau-interacting protein, regulates axonal elongation and branching by facilitating microtubule instability. Liu Y, Lv K, Li Z, Yu AC, Chen J, Teng J. J Biol Chem 287 39911-39924 (2012)
  63. Rigidity of wedge loop in PACSIN 3 protein is a key factor in dictating diameters of tubules. Bai X, Meng G, Luo M, Zheng X. J Biol Chem 287 22387-22396 (2012)
  64. The cryo-EM structure of the SNX-BAR Mvp1 tetramer. Sun D, Varlakhanova NV, Tornabene BA, Ramachandran R, Zhang P, Ford MGJ. Nat Commun 11 1506 (2020)
  65. Optimizing Gō-MARTINI Coarse-Grained Model for F-BAR Protein on Lipid Membrane. Mahmood MI, Poma AB, Okazaki KI. Front Mol Biosci 8 619381 (2021)
  66. Syndapin/SDPN-1 is required for endocytic recycling and endosomal actin association in the C. elegans intestine. Gleason AM, Nguyen KC, Hall DH, Grant BD. Mol Biol Cell mbc.E16-02-0116 (2016)
  67. The Role of BAR Domain Proteins in the Regulation of Membrane Dynamics. Stanishneva-Konovalova TB, Derkacheva NI, Polevova SV, Sokolova OS. Acta Naturae 8 60-69 (2016)
  68. Defining the protein and lipid constituents of tubular recycling endosomes. Farmer T, Xie S, Naslavsky N, Stöckli J, James DE, Caplan S. J Biol Chem 296 100190 (2021)
  69. Lysine acetylation regulates the interaction between proteins and membranes. Okada AK, Teranishi K, Ambroso MR, Isas JM, Vazquez-Sarandeses E, Lee JY, Melo AA, Pandey P, Merken D, Berndt L, Lammers M, Daumke O, Chang K, Haworth IS, Langen R. Nat Commun 12 6466 (2021)
  70. Membrane structure formation induced by two types of banana-shaped proteins. Noguchi H, Fournier JB. Soft Matter 13 4099-4111 (2017)
  71. A Screen for Membrane Fission Catalysts Identifies the ATPase EHD1. Kamerkar SC, Roy K, Bhattacharyya S, Pucadyil TJ. Biochemistry 58 65-71 (2019)
  72. Analysis of diffusion in curved surfaces and its application to tubular membranes. Klaus CJ, Raghunathan K, DiBenedetto E, Kenworthy AK. Mol Biol Cell 27 3937-3946 (2016)
  73. Curvature induction and sensing of the F-BAR protein Pacsin1 on lipid membranes via molecular dynamics simulations. Mahmood MI, Noguchi H, Okazaki KI. Sci Rep 9 14557 (2019)
  74. The cytoplasmic protein Pacsin 2 in kidney development and injury repair. Yao G, Luyten A, Takakura A, Plomann M, Zhou J. Kidney Int 83 426-437 (2013)
  75. Tip-to-tip interaction in the crystal packing of PACSIN 2 is important in regulating tubulation activity. Bai X, Zheng X. Protein Cell 4 695-701 (2013)
  76. MICAL-L1-related and unrelated mechanisms underlying elongated tubular endosomal network (ETEN) in human dendritic cells. Compeer EB, Boes M. Commun Integr Biol 7 e994969 (2014)
  77. Mechanisms of membrane curvature generation in membrane traffic. Shin HW, Takatsu H, Nakayama K. Membranes (Basel) 2 118-133 (2012)
  78. Synaptic vesicle generation from activity-dependent bulk endosomes requires a dephosphorylation-dependent dynamin-syndapin interaction. Cheung G, Cousin MA. J Neurochem 151 570-583 (2019)
  79. Acceleration and suppression of banana-shaped-protein-induced tubulation by addition of small membrane inclusions of isotropic spontaneous curvatures. Noguchi H. Soft Matter 13 7771-7779 (2017)
  80. Exploring the binding dynamics of BAR proteins. Kabaso D, Gongadze E, Jorgačevski J, Kreft M, Van Rienen U, Zorec R, Iglič A. Cell Mol Biol Lett 16 398-411 (2011)
  81. Functional interdependence of the actin nucleator Cobl and Cobl-like in dendritic arbor development. Izadi M, Seemann E, Schlobinski D, Schwintzer L, Qualmann B, Kessels MM. Elife 10 e67718 (2021)
  82. A bacterial membrane sculpting protein with BAR domain-like activity. Phillips DA, Zacharoff LA, Hampton CM, Chong GW, Malanoski AP, Metskas LA, Xu S, Bird LJ, Eddie BJ, Miklos AE, Jensen GJ, Drummy LF, El-Naggar MY, Glaven SM. Elife 10 e60049 (2021)
  83. Assembly of actin filaments and microtubules in Nwk F-BAR-induced membrane deformations. Kelley CF, Becalska AN, Berciu C, Nicastro D, Rodal AA. Commun Integr Biol 8 e1000703 (2015)
  84. Fabrication of lipid tubules with embedded quantum dots by membrane tubulation protein. Tanaka M, Critchley K, Matsunaga T, Evans SD, Staniland SS. Small 8 1590-1595 (2012)
  85. Mechanism of negative membrane curvature generation by I-BAR domains. Nepal B, Sepehri A, Lazaridis T. Structure 29 1440-1452.e4 (2021)
  86. Ndm, a coiled-coil domain protein that suppresses macropinocytosis and has effects on cell migration. Kelsey JS, Fastman NM, Noratel EF, Blumberg DD. Mol Biol Cell 23 3407-3419 (2012)
  87. The unique mechanism of SNX9 BAR domain for inducing membrane tubulation. Park J, Zhao H, Chang S. Mol Cells 37 753-758 (2014)
  88. Cloning, purification, crystallization and preliminary X-ray diffraction analysis of mouse PACSIN 3 protein. Bai X, Meng G, Zheng X. Acta Crystallogr Sect F Struct Biol Cryst Commun 68 159-162 (2012)
  89. Endosomal recycling tubule scission and integrin recycling involve the membrane curvature-supporting protein LITAF. Wunderley L, Zhang L, Yarwood R, Qin W, Lowe M, Woodman P. J Cell Sci 134 jcs258549 (2021)
  90. Inositol hexakisphosphate primes syndapin I/PACSIN 1 activation in endocytosis. Shi Y, Zhao K, Yang G, Yu J, Li Y, Kessels MM, Yu L, Qualmann B, Berggren PO, Yang SN. Cell Mol Life Sci 79 286 (2022)
  91. Screening and identification of dynamin-1 interacting proteins in rat brain synaptosomes. Zhang C, Omran AG, He F, Deng X, Wu L, Peng J, Yin F. Brain Res 1543 17-27 (2014)
  92. Shape transition from elliptical to cylindrical membrane tubes induced by chiral crescent-shaped protein rods. Noguchi H. Sci Rep 9 11721 (2019)
  93. Structure of the 34 kDa F-actin-bundling protein ABP34 from Dictyostelium discoideum. Kim MK, Kim JH, Kim JS, Kang SO. Acta Crystallogr D Biol Crystallogr 71 1835-1849 (2015)
  94. A single chlamydial protein reshapes the plasma membrane and serves as recruiting platform for central endocytic effector proteins. Spona D, Hanisch PT, Hegemann JH, Mölleken K. Commun Biol 6 520 (2023)
  95. Interview Featuring… Shiro Suetsugu: winner of the 2011 FEBS Letters Young Group Leader Award. Interview by Daniela Ruffell. Suetsugu S. FEBS Lett 585 1504-1505 (2011)
  96. Membrane shapers from two distinct superfamilies cooperate in the development of neuronal morphology. Izadi M, Wolf D, Seemann E, Ori A, Schwintzer L, Steiniger F, Kessels MM, Qualmann B. J Cell Biol 222 e202211032 (2023)
  97. Spinal cord synaptic plasticity by GlyRβ release from receptor fields and syndapin I-dependent uptake. Tröger J, Seemann E, Heintzmann R, Kessels MM, Qualmann B. J Neurosci JN-RM-2060-21 (2022)
  98. Vesicle constriction by rings of Janus nanoparticles and aggregates of curved proteins. Bahrami A, Bahrami AH. Nanotechnology 30 345101 (2019)
  99. Wetting-mediated collective tubulation and pearling in confined vesicular drops of DDAB solutions. Haidara H. Soft Matter 10 9460-9469 (2014)