| Literature DB >> 23273262 |
Saba Abdul-Hussein1, Peter F M van der Ven, Homa Tajsharghi.
Abstract
BACKGROUND: The formation of contractile myofibrils requires the stepwise onset of expression of muscle specific proteins. It is likely that elucidation of the expression patterns of muscle-specific sarcomeric proteins is important to understand muscle disorders originating from defects in contractile sarcomeric proteins.Entities:
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Year: 2012 PMID: 23273262 PMCID: PMC3549291 DOI: 10.1186/1471-2474-13-262
Source DB: PubMed Journal: BMC Musculoskelet Disord ISSN: 1471-2474 Impact factor: 2.362
Antibodies used for the immunocytochemical and immunofluorescence analyses
| Mouse monoclonal to desmin | M0760 | Desmin | 1:100 | 1:1000 Anti-mouse Dylight 549 | DakoCytomation |
| Mouse monoclonal [F5D] to myogenin | Ab1835 | Myogenin | 1:50 | | Abcam plc |
| Mouse monoclonal to troponin T, fast | NCL-TROPT | TNNT | 1:20 | | NovoCastra™Lyophilized |
| Mouse monoclonal to titin | 3010-S | Titin | 1:50 | | BioCytex |
| Mouse monoclonal to sarcomeric actin | M0874 | Alpha-skeletal actin | 1:10 | 1:1000 Anti-mouse Dylight 549 | DakoCytomation |
| Mouse monoclonal cardiac actin | M622709 | Alpha-cardiac actin | 1:20 | 1:1000 Anti-mouse Dylight 549 | Nordic Biolabs Bioreagents |
| Mouse monoclonal to myosin heavy chain, (developmental) | NCL-MHCd | MyHC-embryonic | 1:10 | 1:1000 Anti-mouse Dylight 549 | NovoCastra™Lyophilized |
| Mouse monoclonal to myosin heavy chain, (neonatal) | NCL-MHCn | MyHC-neonatal | 1:10 | 1:1000 Anti-mouse Dylight 549 | NovoCastra™Lyophilized |
| Mouse monoclonal to myosin heavy chain, (slow) | NCL-MHCs | MyHC-slow | 1:250 | | NovoCastra™Lyophilized |
| Mouse monoclonal to myosin heavy chain, (fast) | NCL-MHCf | MyHC-fast | 1:120 | | NovoCastra™Lyophilized |
| Mouse monoclonal to myosin heavy chain, (fast IIa and slow) | N2.261 | MyHC-fast IIa+slow | 1:120 | 1:1000 Anti-mouse Dylight 549 | Santa Cruz Biotechnology |
| Mouse monoclonal to sarcomeric tropomyosin | T9283 | TPM | 1:100 | | Sigma-Aldrich |
| Rabbit polyclonal to beta tropomyosin | ARP48224T100 | TPM2 | 1:120 | | Aviva Systems Biology |
| Rabbit polyclonal to myosin binding protein C, (slow) | HPA021004 | MYBPC1-slow | 1:50 | | Sigma-Aldrich |
| Rabbit polyclonal to myosin binding protein C, (fast) | SAB2101539 | MYBPC2-fast | 1:100 | | Sigma-Aldrich |
| Mouse monoclonal [12F10] to skeletal muscle troponin I, (slow) | Ab8293 | TNNI-slow | 1:500 | | Abcam plc |
| Mouse monoclonal [2F12A11] to skeletal muscle troponin I, (fast) | Ab119943 | TNNI- fast | 1:200 | | Abcam plc |
| Mouse monoclonal [284(19C7)] to cardiac troponin I | Ab19615 | TNNI- cardiac | 1:500 | | Abcam plc |
| Mouse monoclonal T12 to Z-disk titin | | Z-disk | 1:20 | Polyclonal Anti-Mouse Immunoglobulins/FITC 1:1000 | Fürst et al., 1988 |
| Mouse monoclonal T3 to A/I junction titin | | A/I junction | 1:5 | Polyclonal Anti-Mouse Immunoglobulins/FITC 1:1000 | Fürst et al., 1988 |
| Mouse monoclonal T30 to A-band titin | | A-band | 1:5 | Polyclonal Anti-Mouse Immunoglobulins/FITC 1:1000 | Fürst et al., 1989 |
| Mouse monoclonal T51 to M-band titin | M-band | 1:5 | Polyclonal Anti-Mouse Immunoglobulins/FITC 1:1000 | Obermann et al., 1996 |
Figure 1RT-PCR analysis of myogenic regulatory factors (MRFs) and a panel of striated muscle sarcomeric genes in myoblasts and cells differentiated for 6 days. RNA isolated from proliferating mononucleated myoblasts (A, C, E and G) and cultures after 6 days of differentiation (B, D, F and H) was analyzed by RT-PCR and the products were separated on agarose gels. The expression of MRF genes (MYOD1, MYF5 and MYOG), TM isoforms, ACTA1, ACTC1, different MyHC isoforms, DES, TTN and MyBPC isoforms, and troponin I and T isoforms was readily detectable in myoblasts and differentiated cells.
Figure 2Immunofluorescence micrographs of stained myoblasts and 5-day myotube cultures. Staining with monoclonal antibodies recognizing titin epitopes in the Z-disk (A and E), A/I junction (B and F), A-band (C and G) and M-band (D and H) reveal development of mature cross-striated myofibrils. Nuclei were stained with DAPI (blue). The bars represent 10 μm.
Figure 3Immunocytochemical analysis of proliferating human mononucleated myoblasts. (A) The strong homogeneous staining for desmin revealed the myogenic potential of virtually all mononucleated cells. (B) Only a small number of the myonuclei of proliferating cells expressed myogenin (arrows). (C) A subset of myoblasts showed immunoreactivity with antibody against titin. (D-E-F-G-H) Demonstrate positive staining of a few cells with antibodies against MyHC-embryonic, MyHC-neonatal, MyHC-slow/beta cardiac, MyHC-fast and MyHC-fast IIa+slow, respectively. Insets demonstrate considerable numbers of mononucleated myoblasts expressing various MyHC isoforms, as indicated. Homogeneous staining of proliferating mononucleated cells with antibodies against slow (I) and fast (J) MyBPC respectively. Uniform and strong staining of proliferating myoblasts with antibody against alpha-cardiac actin (K). The cells were weakly stained with antibody against alpha-skeletal actin (L). The bar represents 10 μm and 100 μm for the insets.
Figure 4Immunocytochemical analysis of human cells after 6 days of differentiation. (A) shows strong homogeneous staining for desmin of the cells. (B) The differential capacity of the multinucleated cells was demonstrated by myogenin-positive staining of the majority of the nuclei. (C) Strong homogeneous staining of differentiated cells with an antibody against titin. (D) The vast majority of differentiated cells showed strong staining with the antibody against MyHC-embryonic and (E) many myotubes expressed neonatal MyHC. (F-H) expression of fast and slow MyHC was revealed in a subset of fused cells using antibodies against these isoforms. Positive staining of differentiated cells with antibodies against slow (I) and fast (J) MyBPC, respectively. The differentiated cells showed weak positive immunoreactivity with the antibody against alpha-cardiac actin (K) but stronger positive staining with alpha-skeletal actin (L). The bar represents 10 μm.
Figure 5Immunohistochemical analysis of human myoblasts and cells after 6 days of differentiation. Homogeneous staining of cells with (A) antibody against three different sarcomeric TM isoforms and (B) a specific antibody against beta-tropomyosin, β-TM isoform. (C) Strong positive staining of multinucleated cells with an antibody against sarcomeric TM isoforms. (D) Staining of cells with specific antibody against beta-tropomyosin. (E) The mononucleated cells were negative for fast troponin T expression, while positive immunoreactivity was observed in (F) multinucleated cells, as illustrated by the anti-fast TNNT MAb staining. Homogeneous staining of (G) proliferating myoblasts and (H) multinucleated myotubes with antibody against slow isoform of troponin I. No expression of fast troponin I was detected in (I) proliferating myoblasts whereas positive staining was observed in (J) differentiated cells by an antibody against this isoform. Homogeneous immunoreactivity of both (K) proliferating myoblasts and (L) multinucleated cells with antibodies against cardiac isoform of troponin I. A subset of the multinucleated myotubes have a myofibre-like appearance with peripherally located nuclei (H and J; arrows). The bar represents 10 μm.