Page 180 - Read Online
P. 180
Page 22 Ribovski et al. Extracell Vesicles Circ Nucleic Acids 2023;4:283-305 https://dx.doi.org/10.20517/evcna.2023.26
92. Chlanda P, Mekhedov E, Waters H, et al. The hemifusion structure induced by influenza virus haemagglutinin is determined by
physical properties of the target membranes. Nat Microbiol 2016;1:16050. DOI PubMed PMC
93. Mitsui K, Koshimura Y, Yoshikawa Y, Matsushita M, Kanazawa H. The endosomal Na(+)/H(+) exchanger contributes to
multivesicular body formation by regulating the recruitment of ESCRT-0 Vps27p to the endosomal membrane. J Biol Chem
2011;286:37625-38. DOI PubMed PMC
94. Boersma AJ, Zuhorn IS, Poolman B. A sensor for quantification of macromolecular crowding in living cells. Nat Methods
2015;12:227-9, 1 p following 229. DOI PubMed
95. Wang Z, Chen D, Guan D, et al. Material properties of phase-separated TFEB condensates regulate the autophagy-lysosome pathway.
J Cell Biol 2022;221:e202112024. DOI PubMed PMC
96. Liu XM, Ma L, Schekman R. Selective sorting of microRNAs into exosomes by phase-separated YBX1 condensates. Elife
2021;10:e71982. DOI PubMed PMC
97. de Gassart A, Geminard C, Hoekstra D, Vidal M. Exosome secretion: the art of reutilizing nonrecycled proteins? Traffic 2004;5:896-
903. DOI PubMed
98. Gruenberg J. Life in the lumen: the multivesicular endosome. Traffic 2020;21:76-93. DOI PubMed PMC
99. Wang S, Sun H, Tanowitz M, Liang XH, Crooke ST. Intra-endosomal trafficking mediated by lysobisphosphatidic acid contributes to
intracellular release of phosphorothioate-modified antisense oligonucleotides. Nucleic Acids Res 2017;45:5309-22. DOI PubMed
PMC
100. ur Rehman Z, Hoekstra D, Zuhorn IS. Protein kinase A inhibition modulates the intracellular routing of gene delivery vehicles in
HeLa cells, leading to productive transfection. J Control Release 2011;156:76-84. DOI PubMed
101. Savina A, Fader CM, Damiani MT, Colombo MI. Rab11 promotes docking and fusion of multivesicular bodies in a calcium-
dependent manner. Traffic 2005;6:131-43. DOI
102. Schafer JC, Baetz NW, Lapierre LA, McRae RE, Roland JT, Goldenring JR. Rab11-FIP2 interaction with MYO5B regulates
movement of Rab11a-containing recycling vesicles. Traffic 2014;15:292-308. DOI PubMed PMC
103. Ostrowski M, Carmo NB, Krumeich S, et al. Rab27a and Rab27b control different steps of the exosome secretion pathway. Nat Cell
Biol 2010;12:19-30. DOI
104. Hsu C, Morohashi Y, Yoshimura S, et al. Regulation of exosome secretion by Rab35 and its GTPase-activating proteins TBC1D10A-
C. J Cell Biol 2010;189:223-32. DOI PubMed PMC
105. Joshi BS, Zuhorn IS. Heparan sulfate proteoglycan-mediated dynamin-dependent transport of neural stem cell exosomes in an in vitro
blood-brain barrier model. Eur J Neurosci 2021;53:706-19. DOI PubMed PMC
106. Singh A, Fedele C, Lu H, Nevalainen MT, Keen JH, Languino LR. Exosome-mediated Transfer of αvβ3 integrin from tumorigenic to
nontumorigenic cells promotes a migratory phenotype. Mol Cancer Res 2016;14:1136-46. DOI PubMed PMC
107. Reclusa P, Verstraelen P, Taverna S, et al. Improving extracellular vesicles visualization: from static to motion. Sci Rep
2020;10:6494. DOI PubMed PMC
108. Simonsen JB. Pitfalls associated with lipophilic fluorophore staining of extracellular vesicles for uptake studies. J Extracell Vesicles
2019;8:1582237. DOI PubMed PMC
109. Degors IMS, Wang C, Rehman ZU, Zuhorn IS. Carriers break barriers in drug delivery: endocytosis and endosomal escape of gene
delivery vectors. Acc Chem Res 2019;52:1750-60. DOI PubMed PMC
110. Rennick JJ, Johnston APR, Parton RG. Key principles and methods for studying the endocytosis of biological and nanoparticle
therapeutics. Nat Nanotechnol 2021;16:266-76. DOI PubMed
111. Georgieva JV, Kalicharan D, Couraud PO, et al. Surface characteristics of nanoparticles determine their intracellular fate in and
processing by human blood-brain barrier endothelial cells in vitro. Mol Ther 2011;19:318-25. DOI PubMed PMC
112. Vercauteren D, Vandenbroucke RE, Jones AT, et al. The use of inhibitors to study endocytic pathways of gene carriers: optimization
and pitfalls. Mol Ther 2010;18:561-9. DOI PubMed PMC
113. Itakura S, Shohji A, Amagai S, et al. Gene knockdown in HaCaT cells by small interfering RNAs entrapped in grapefruit-derived
extracellular vesicles using a microfluidic device. Sci Rep 2023;13:3102. DOI PubMed PMC
114. O'Brien K, Ughetto S, Mahjoum S, Nair AV, Breakefield XO. Uptake, functionality, and re-release of extracellular vesicle-
encapsulated cargo. Cell Rep 2022;39:110651. DOI PubMed PMC
115. Rappa G, Santos MF, Green TM, et al. Nuclear transport of cancer extracellular vesicle-derived biomaterials through nuclear
envelope invagination-associated late endosomes. Oncotarget 2017;8:14443-61. DOI PubMed PMC
116. Ohki S, Flanagan TD, Hoekstra D. Probe transfer with and without membrane fusion in a fluorescence fusion assay. Biochemistry
1998;37:7496-503. DOI
117. Costafreda MI, Abbasi A, Lu H, Kaplan G. Exosome mimicry by a HAVCR1-NPC1 pathway of endosomal fusion mediates hepatitis
A virus infection. Nat Microbiol 2020;5:1096-106. DOI PubMed PMC
118. Xia HF, Yu ZL, Zhang LJ, et al. Real-Time dissection of the transportation and miRNA-release dynamics of small extracellular
vesicles. Adv Sci 2023;10:e2205566. DOI PubMed PMC
119. Albanese M, Chen YA, Hüls C, et al. MicroRNAs are minor constituents of extracellular vesicles that are rarely delivered to target
cells. PLoS Genet 2021;17:e1009951. DOI PubMed PMC
120. Hall MP, Unch J, Binkowski BF, et al. Engineered luciferase reporter from a deep sea shrimp utilizing a novel imidazopyrazinone
substrate. ACS Chem Biol 2012;7:1848-57. DOI PubMed PMC

