TY - JOUR
T1 - The effects of actin cytoskeleton perturbation on keratin intermediate filament formation in mesenchymal stem/stromal cells
AU - Chang, Tzu Hao
AU - Huang, Hsien Da
AU - Ong, Wei Kee
AU - Fu, Yun Ju
AU - Lee, Oscar K.
AU - Chien, Shu
AU - Ho, Jennifer H.
PY - 2014/4
Y1 - 2014/4
N2 - F-actin plays a crucial role in composing the three-dimensional cytoskeleton and F-actin depolymerization alters fate choice of mesenchymal stem/stromal cells (MSCs). Here, we investigated differential gene expression and subsequent physiological changes in response to F-actin perturbation by latrunculin B in MSCs. Nineteen genes were down-regulated and 27 genes were up-regulated in the first 15min after F-actin depolymerization. Functional enrichment analysis revealed that five genes involved in keratin (KRT) intermediate filaments clustering in the chromosome 17q21.2 region, i.e., KRT14, KRT19, KRT34, KRT-associated protein (KRTAP) 1-5, and KRTAP2-3, were strongly up-regulated. Transcription factor prediction identified NKX2.5 as the potential transcription factor to control KRT19, KRT34, KRTAP1-5, and KRTAP2-3; and indeed, the protein level of NKX2.5 was markedly increased in the nuclear fraction within 15min of F-actin depolymerization. The peak of keratin intermediate filament formation was 1h after actin perturbation, and the morphological changes showed by decrease in the ratio of long-axis to short-axis diameter in MSCs was observed after 4h. Together, F-actin depolymerization rapidly triggers keratin intermediate filament formation by turning on keratin-related genes on chromosome 17q21.2. Such findings offer new insight in lineage commitment of MSCs and further scaffold design in MSC-based tissue engineering.
AB - F-actin plays a crucial role in composing the three-dimensional cytoskeleton and F-actin depolymerization alters fate choice of mesenchymal stem/stromal cells (MSCs). Here, we investigated differential gene expression and subsequent physiological changes in response to F-actin perturbation by latrunculin B in MSCs. Nineteen genes were down-regulated and 27 genes were up-regulated in the first 15min after F-actin depolymerization. Functional enrichment analysis revealed that five genes involved in keratin (KRT) intermediate filaments clustering in the chromosome 17q21.2 region, i.e., KRT14, KRT19, KRT34, KRT-associated protein (KRTAP) 1-5, and KRTAP2-3, were strongly up-regulated. Transcription factor prediction identified NKX2.5 as the potential transcription factor to control KRT19, KRT34, KRTAP1-5, and KRTAP2-3; and indeed, the protein level of NKX2.5 was markedly increased in the nuclear fraction within 15min of F-actin depolymerization. The peak of keratin intermediate filament formation was 1h after actin perturbation, and the morphological changes showed by decrease in the ratio of long-axis to short-axis diameter in MSCs was observed after 4h. Together, F-actin depolymerization rapidly triggers keratin intermediate filament formation by turning on keratin-related genes on chromosome 17q21.2. Such findings offer new insight in lineage commitment of MSCs and further scaffold design in MSC-based tissue engineering.
KW - Chromosome 17q21.2
KW - F-actin depolymerization
KW - Intermediate filaments
KW - Keratin
KW - Mesenchymal stem cells (MSCs)
KW - NK2 homeobox 5 (NKX2.5)
UR - http://www.scopus.com/inward/record.url?scp=84896721884&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=84896721884&partnerID=8YFLogxK
U2 - 10.1016/j.biomaterials.2014.01.028
DO - 10.1016/j.biomaterials.2014.01.028
M3 - Article
C2 - 24513317
AN - SCOPUS:84896721884
SN - 0142-9612
VL - 35
SP - 3934
EP - 3944
JO - Biomaterials
JF - Biomaterials
IS - 13
ER -