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P Taylor-Harris

Publications and source records attributed to P Taylor-Harris.

4 recordsLinked to original sources

Evidence for differential post-translational modifications of slow myosin heavy chain during murine skeletal muscle development.

The contractile properties of muscle fibres are, in part, determined by the myosin heavy chain (MyHC) isoforms they express. Using monoclonal antibodies, we show that at least three forms of slow twitch MyHC accumulate sequentially during mouse fetal development and that slow MyHC maturation in slow fibres occurs before expression of the adult fast MyHCs in fast fibres. Expression of deletion derivatives of beta-cardiac MyHC cDNA shows that the slow MyHC epitopes that are detected in adult but not in young animals are located near the N-terminus. The same N-terminal region of various fast MyHC molecules contains a conserved epitope that can, on occasions, be observed when slow MyHC cDNA is expressed in non-muscle cells. The results raise the possibility that the N-terminal epitopes result from post-translational modification of the MyHC and that a sequence of slow and fast MyHC isoform post-translational modifications plays a significant role during development of murine muscle fibres.

Animals↗

Using molecular genetics as a tool in understanding crawling cell locomotion in myoblasts.

We have used digitally recorded interference microscopy with automatic phase shifting (DRIMAPS) to investigate the crawling locomotion of normal and mutant mouse myoblasts. Contraction forces that give rise to cell body movement, tail retraction and cell adhesion to the substrate in myoblasts and other locomoting tissue cells arise from the interactions of actin and non-muscle myosin II. The activity of non-muscle myosin II is regulated differently from that of skeletal myosin. Using DRIMAPS, we found that crawling locomotion was altered in myoblasts that heterologously expressed human beta-cardiac myosin heavy chain (MHC); the cells moved more slowly and had reduced rates of protrusion and retraction. Immunolocalization demonstrated that MHC and non-muscle myosin II were not co-localized, suggesting that MHC does not compete directly with myosin II, but interferes with cell locomotion by binding inappropriately to actin filaments and possibly cross-linking them. Myosin I may be involved in protrusion of the lamellipodia. However, using DRIMAPS, we found that crawling locomotion was unaltered in myoblasts that heterologously expressed a truncated myosin I which lacked the membrane-binding tail domain. This suggests that, if endogenous myosin I is important for cell locomotion, this mutant was unable to interfere with its action. We conclude that the effects on locomotion of expressing foreign or mutant proteins of the cytoskeleton in vertebrate cells can be subtle and can be swamped by the intrinsic variability of the cells. Their characterization requires automated methods of acquiring data, such as DRIMAPS, and careful statistical analysis in order to take account of other sources of variation.

Actins↗

Zfyl encodes a nuclear sequence-specific DNA binding protein.

Zfyl is a mouse Y chromosomal gene encoding a zinc finger protein which is thought to have some function during spermatogenesis. Here we show that, when introduced into tissue culture cells, Zfyl is targeted to the nucleus. Two independent signals are present within the protein for nuclear localization. This nuclear Zfyl protein is able to bind strongly to DNA-cellulose and, using site-selection assays, we have identified specific Zfyl DNA binding sites. Taken together these results suggest that Zfyl is a nuclear-located sequence-specific DNA binding protein which functions during spermatogenesis.

Amino Acid Sequence↗

R-ras interacts with rasGAP, neurofibromin and c-raf but does not regulate cell growth or differentiation.

Within the superfamily of ras-related GTP-binding proteins, only ras itself has been shown to act as an oncogene. Seven other proteins, however, have greater than 50% amino acid identity to ras and one of them, rap1A, has been shown to interact with the ras GTPase activating protein, ras-GAP, and to inhibit ras function when overexpressed. In this paper, we have examined the biological and biochemical activities of another close relative of ras, R-ras. We show that in vitro, R-ras shares a number of activities with ras; it interacts with the catalytic domain of ras-GAP, with the GAP-related domain of neurofibromin and with the ser/thr kinase, c-raf. Furthermore, R-ras stimulates the expression of c-fos when microinjected into Swiss 3T3 cells. However, unlike ras, R-ras does not include DNA synthesis or membrane ruffling in quiescent fibroblasts, nor does it induce maturation of Xenopus oocytes or differentiation of PC12 cells. In addition, we show that unlike rap1A, R-ras does not interfere with ras-stimulated gene transcription. We conclude from these experiments that although R-ras and ras share some biochemical activities, they control distinct biological processes.

3T3 Cells↗