TY - JOUR
T1 - Sox10-Venus mice
T2 - A new tool for real-time labeling of neural crest lineage cells and oligodendrocytes
AU - Shibata, Shinsuke
AU - Yasuda, Akimasa
AU - Renault-Mihara, Francois
AU - Suyama, Satoshi
AU - Katoh, Hiroyuki
AU - Inoue, Takayoshi
AU - Inoue, Yukiko U.
AU - Nagoshi, Narihito
AU - Sato, Momoka
AU - Nakamura, Masaya
AU - Akazawa, Chihiro
AU - Okano, Hideyuki
N1 - Funding Information:
We are grateful to Dr. R.B. Darnell for the gift of the anti-Hu antibody. We are grateful to Drs. C. Hara, N. Kishi, N. Shimojima, M. Mori, A. Iwanami, and H. Kanki for their excellent technical instruction and for critical reading of the manuscript. We also thank all the members in the Okano Laboratory and Akazawa Laboratory for their encouragement and invaluable comments on this manuscript. This work was supported by a Grant-in-Aid for Young Scientists and a Grant-in-Aid for Scientific Research (C) from The Ministry of Education, Culture, Sports, Science and Technology, Japan (MEXT) to S.S. and F.R-M.; by a Keio University Grant-in-Aid for the Encouragement of Young Medical Scientists to S.S. and F.R-M.; by Keio Gijuku Academic Development Funds to S.S.; by a JST-SORST fellowship to F.R-M.; by grants from Research Foundation ITSUU Laboratory and Takeda Science Foundation to T. I.; and by a Grant-in-Aid from the Global COE Program of the MEXT to Keio University to H.O.
PY - 2010
Y1 - 2010
N2 - Background. While several mouse strains have recently been developed for tracing neural crest or oligodendrocyte lineages, each strain has inherent limitations. The connection between human SOX10 mutations and neural crest cell pathogenesis led us to focus on the Sox10 gene, which is critical for neural crest development. We generated Sox10-Venus BAC transgenic mice to monitor Sox10 expression in both normal development and in pathological processes. Results. Tissue fluorescence distinguished neural crest progeny cells and oligodendrocytes in the Sox10-Venus mouse embryo. Immunohistochemical analysis confirmed that Venus expression was restricted to cells expressing endogenous Sox10. Time-lapse imaging of various tissues in Sox10-Venus mice demonstrated that Venus expression could be visualized at the single-cell level in vivo due to the intense, focused Venus fluorescence. In the adult Sox10-Venus mouse, several types of mature and immature oligodendrocytes along with Schwann cells were clearly labeled with Venus, both before and after spinal cord injury. Conclusions. In the newly-developed Sox10-Venus transgenic mouse, Venus fluorescence faithfully mirrors endogenous Sox10 expression and allows for in vivo imaging of live cells at the single-cell level. This Sox10-Venus mouse will thus be a useful tool for studying neural crest cells or oligodendrocytes, both in development and in pathological processes.
AB - Background. While several mouse strains have recently been developed for tracing neural crest or oligodendrocyte lineages, each strain has inherent limitations. The connection between human SOX10 mutations and neural crest cell pathogenesis led us to focus on the Sox10 gene, which is critical for neural crest development. We generated Sox10-Venus BAC transgenic mice to monitor Sox10 expression in both normal development and in pathological processes. Results. Tissue fluorescence distinguished neural crest progeny cells and oligodendrocytes in the Sox10-Venus mouse embryo. Immunohistochemical analysis confirmed that Venus expression was restricted to cells expressing endogenous Sox10. Time-lapse imaging of various tissues in Sox10-Venus mice demonstrated that Venus expression could be visualized at the single-cell level in vivo due to the intense, focused Venus fluorescence. In the adult Sox10-Venus mouse, several types of mature and immature oligodendrocytes along with Schwann cells were clearly labeled with Venus, both before and after spinal cord injury. Conclusions. In the newly-developed Sox10-Venus transgenic mouse, Venus fluorescence faithfully mirrors endogenous Sox10 expression and allows for in vivo imaging of live cells at the single-cell level. This Sox10-Venus mouse will thus be a useful tool for studying neural crest cells or oligodendrocytes, both in development and in pathological processes.
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U2 - 10.1186/1756-6606-3-31
DO - 10.1186/1756-6606-3-31
M3 - Article
C2 - 21034515
AN - SCOPUS:77958549017
SN - 1756-6606
VL - 3
JO - Molecular brain
JF - Molecular brain
IS - 1
M1 - 31
ER -