Megakaryoblastic leukemia factor-1 transduces cytoskeletal signals and induces smooth muscle cell differentiation from undifferentiated embryonic stem cells

被引:133
作者
Du, KL [1 ]
Chen, M [1 ]
Li, J [1 ]
Lepore, JJ [1 ]
Mericko, P [1 ]
Parmacek, MS [1 ]
机构
[1] Univ Penn, Sch Med, Div Cardiovasc Med, Philadelphia, PA 19104 USA
关键词
D O I
10.1074/jbc.M400961200
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The SAP domain transcription factor myocardin plays a critical role in the transcriptional program regulating smooth muscle cell differentiation. In this report, we describe the capacity of myocardin to physically associate with megakaryoblastic leukemia factor-1 (MKL1) and characterize the function of MKL1 in smooth muscle cells (SMCs). The MKL1 gene is expressed in most human tissues and myocardin and MKL are co-expressed in SMCs. MKL1 and myocardin physically associate via conserved leucine zipper domains. Overexpression of MKL1 transactivates serum response factor (SRF)-dependent SMC-restricted transcriptional regulatory elements including the SM22alpha promoter, smooth muscle myosin heavy chain promoter/enhancer, and SM-alpha-actin promoter/enhancer in non-SMCs. Moreover, forced expression of MKL1 and SRF in undifferentiated SRF-/- embryonic stem cells activates multiple endogenous SMC-restricted genes at levels equivalent to, or exceeding, myocardin. Forced expression of a dominant-negative MKL1 mutant reduces myocardin-induced activation of the SMC-specific SM22alpha promoter. In NIH3T3 fibroblasts MKL1 localizes to the cytoplasm and translocates to the nucleus in response to serum stimulation, actin treadmilling, and RhoA signaling. In contrast, in SMCs MKL1 is observed exclusively in the nucleus regardless of serum conditions or RhoA signaling. However, when actin polymerization is disrupted MKL1 translocates from the nucleus to the cytoplasm in SMCs. Together, these data were consistent with a model wherein MKL1 transduces signals from the cytoskeleton to the nucleus in SMCs and regulates SRF-dependent SMC differentiation autonomously or in concert with myocardin.
引用
收藏
页码:17578 / 17586
页数:9
相关论文
共 37 条
[1]   SAP - a putative DNA-binding motif involved in chromosomal organization [J].
Aravind, L ;
Koonin, EV .
TRENDS IN BIOCHEMICAL SCIENCES, 2000, 25 (03) :112-114
[2]   Megakaryoblastic leukemia 1, a potent transcriptional coactivator for serum response factor (SRF), is required for serum induction of SRF target genes [J].
Cen, B ;
Selvaraj, A ;
Burgess, RC ;
Hitzler, JK ;
Ma, ZG ;
Morris, SW ;
Prywes, R .
MOLECULAR AND CELLULAR BIOLOGY, 2003, 23 (18) :6597-6608
[3]   Myocardin: A component of a molecular switch for smooth muscle differentiation [J].
Chen, JY ;
Kitchen, CM ;
Streb, JW ;
Miano, JM .
JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 2002, 34 (10) :1345-1356
[4]   Myocardin is a critical serum response factor cofactor in the transcriptional program regulating smooth muscle cell differentiation [J].
Du, KL ;
Ip, HS ;
Li, J ;
Chen, M ;
Dandre, F ;
Yu, W ;
Lu, MM ;
Owens, GK ;
Parmacek, MS .
MOLECULAR AND CELLULAR BIOLOGY, 2003, 23 (07) :2425-2437
[5]   THE RHO-FAMILY GTPASES RHOA, RAC1, AND CDC42HS REGULATE TRANSCRIPTIONAL ACTIVATION BY SRF [J].
HILL, CS ;
WYNNE, J ;
TREISMAN, R .
CELL, 1995, 81 (07) :1159-1170
[6]   SERUM RESPONSE FACTOR - TRANSCRIPTIONAL REGULATION OF GENES INDUCED BY GROWTH-FACTORS AND DIFFERENTIATION [J].
JOHANSEN, FE ;
PRYWES, R .
BIOCHIMICA ET BIOPHYSICA ACTA-REVIEWS ON CANCER, 1995, 1242 (01) :1-10
[7]   A serum response factor-dependent transcriptional regulatory program identifies distinct smooth muscle cell sublineages [J].
Kim, S ;
Ip, HS ;
Lu, MM ;
Clendenin, C ;
Parmacek, MS .
MOLECULAR AND CELLULAR BIOLOGY, 1997, 17 (04) :2266-2278
[8]   TRANSCRIPTIONAL REGULATION BY CREB AND ITS RELATIVES [J].
LEE, KAW ;
MASSON, N .
BIOCHIMICA ET BIOPHYSICA ACTA, 1993, 1174 (03) :221-233
[9]   The serum response factor coactivator myocardin is required for vascular smooth muscle development [J].
Li, SJ ;
Wang, DZ ;
Wang, ZG ;
Richardson, JA ;
Olson, EN .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (16) :9366-9370
[10]   Analysis of relative gene expression data using real-time quantitative PCR and the 2-ΔΔCT method [J].
Livak, KJ ;
Schmittgen, TD .
METHODS, 2001, 25 (04) :402-408