Identification of Small Molecules Which Induce Skeletal Muscle Differentiation in Embryonic Stem Cells via Activation of the Wnt and Inhibition of Smad2/3 and Sonic Hedgehog Pathways

被引:14
作者
Lee, Hyunwoo [1 ]
Haller, Corinne
Manneville, Carole
Doll, Thierry
Fruh, Isabelle
Keller, Caroline Gubser
Richards, Shola M.
Ibig-Rehm, Yvonne [2 ]
Patoor, Maude [3 ]
Goette, Marjo [3 ]
Bouchez, Laure C. [3 ]
Mueller, Matthias
机构
[1] Univ Basel, Fac Sci, Basel, Switzerland
[2] Ctr Prote Chem, Basel, Switzerland
[3] Novartis Inst Biomed Res, Global Discovery Chem, Basel, Switzerland
关键词
Embryonic stem cells; Skeletal muscle; Muscle stem cells; Cellular therapy; Mesoderm; Myogenesis; Differentiation; GENE-EXPRESSION; HUMAN ES; MOUSE; REGENERATION; PROGENITORS; MYOGENESIS; POTENT;
D O I
10.1002/stem.2228
中图分类号
Q813 [细胞工程];
学科分类号
摘要
The multilineage differentiation capacity of mouse and human embryonic stem (ES) cells offers a testing platform for small molecules that mediate mammalian lineage determination and cellular specialization. Here we report the identification of two small molecules which drives mouse 129 ES cell differentiation to skeletal muscle with high efficiency without any genetic modification. Mouse embryoid bodies (EBs) were used to screen a library of 1,000 small molecules to identify compounds capable of inducing high levels of Pax3 mRNA. Stimulation of EBs with SMIs (skeletal muscle inducer, SMI1 and SMI2) from the screen resulted in a high percentage of intensively twitching skeletal muscle fibers 3 weeks after induction. Gene expression profiling studies that were carried out for mode of actions analysis showed that SMIs activated genes regulated by the Wnt pathway and inhibited expression of Smad2/3 and Sonic Hedgehog (Shh) target genes. A combination of three small molecules known to modulate these three pathways acted similarly to the SMIs found here, driving ES cells from 129 as well as Balb/c and C57Bl/6 to skeletal muscle. Taken together, these data demonstrate that the SMI drives ES cells to skeletal muscle via concerted activation of the Wnt pathway, and inhibition of Smad2/3 signaling and Shh pathways. This provides important developmental biological information about skeletal muscle differentiation from embryonic stem cells and may lead to the development of new therapeutics for muscle disease.
引用
收藏
页码:299 / 310
页数:12
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