PubMed HealthSearch

PubMed · 8597572

Compressibility and specific volume of actin decrease upon G to F transformation.

Abstract

We measured the densities as well as the sound velocities in solutions of G-actin, F-actin and the reconstituted thin filament. Using the data obtained, we determined their partial specific volumes and partial specific adiabatic compressibilities. The objectives were to investigate the volume change of actin upon polymerization and to detect the conformational change associated with the ca2+-binding to the reconstituted thin filament. The partial specific volume and the partial specific adiabatic compressibility of G-actin were 0.749 cm3/g and 9.3 x 10(-12) cm2/dyne, respectively. The results suggest that G-actin is a rather soft protein compared with other globular proteins. The partial specific volumes of F-actin were in a range of 0.63 -0.66 cm3/g depending on the solvent conditions. The partial specific adiabatic compressibilities of F-actin were negative (-(7-13) x 10(-12) cm3/dyne). These data indicate that the amount of hydration may increase by several times upon polymerization assuming that the size of the cavity remains constant. We detected little difference between the partial specific adiabatic compressibility of the reconstituted thin filament in a Ca2+-bound state and that in a Ca2+-unbound state. This suggests that the Ca2+ binding affected not the subunit itself but the inter-subunit junction.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

N Suzuki, Y Tamura, K Mihashi. 1996-02-08. Compressibility and specific volume of actin decrease upon G to F transformation.. https://doi.org/10.1016/0167-4838(95)00213-8

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Heterozygous Tropomodulin 3 mice have improved lung vascularization after chronic hypoxia.

The molecular mechanisms leading to high-altitude pulmonary hypertension (HAPH) remains poorly understood. We previously analyzed the whole genome sequence of Kyrgyz highland population and identified eight genomic intervals having a potential role in HAPH. Tropomodulin 3 gene (TMOD3), which encodes a protein that binds and caps the pointed ends of actin filaments and inhibits cell migration, was one of the top candidates. Here we systematically sought additional evidence to validate the functional role of TMOD3. In-silico analysis reveals that some of the SNPs in HAPH associated genomic intervals were positioned in a regulatory region that could result in alternative splicing of TMOD3. In order to functionally validate the role of TMOD3 in HAPH, we exposed Tmod3-/+ mice to 4&#xa0;weeks of constant hypoxia, i.e. 10% O2 and analyzed both functional (hemodynamic measurements) and structural (angiography) parameters related to HAPH. The hemodynamic measurements, such as right ventricular systolic pressure, a surrogate measure for pulmonary arterial systolic pressure, and right ventricular contractility (RV-&#x2009;&#xb1;&#x2009;dP/dt), increases with hypoxia did not separate between Tmod3-/+ and control mice. Remarkably, there was a significant increase in the number of lung vascular branches and total length of pulmonary vascular branches (P&#x2009;<&#x2009;0.001) in Tmod3-/+ after 4&#xa0;weeks of constant hypoxia as compared with controls. Notably, the Tmod3-/+ endothelial cells migration was also significantly higher than that from the wild-type littermates. Our results indicate that, under chronic hypoxia, lower levels of Tmod3 play an important role in the maintenance or neo-vascularization of pulmonary arteries.

Actin Cytoskeleton

Localization of tissue factor in actin-filament-rich membrane areas of epithelial cells.

Tissue factor (TF), the cellular receptor and cofactor for clotting factor VII/VIIa (FVII/VIIa), is known mainly as the initiator of the coagulation protease cascade. Recently, it was shown that inactivation of the murine TF gene (TF-/-) results in embryonic lethality which is most likely due to some failure of vascular integrity. On the other hand, gene disruption in mice of coagulation proteins like FVII, prothrombin, and fibrinogen results in phenotypes of embryonic development that contrast with that of TF-/-, suggesting a role for TF beyond fibrin formation in embryogenesis. In addition, there is a growing body of evidence that cellular TF may be involved in nonhemostatic functions. To determine the microtopography of membrane TF with regard to the cytoskeleton organization, we examined the expression patterns of TF and cytoskeletal proteins in various cell lines by means of double immunofluorescence and electron microscopy (EM). In spreading cells, a granular membrane TF expression of the cell cortex and a pronounced granular TF staining of microspikes, lamellipodes, and ruffled membrane areas were observed. Especially, actin and alpha-actinin were in close proximity to TF in these regions. Colocalization of TF and nonmuscle filamin (ABP-280) at the leading edge of spreading cells indicated an association of TF with the actin filament system, too. Using scanning EM we found gold-labeled TF at long processes and actin-filament-containing microspikes of neighboring cells in both branching and contact sites. By the means of immunogold EM we observed that TF is localized at the cell surface in a spotty pattern, at the base and at the top of budding processes. The observed staining pattern points to a connection of TF with elements of the cytoskeleton in these highly dynamic membrane regions, a fact which is underlined by the recently described molecular interaction of TF's cytoplasmic domain with ABP-280. In cells undergoing cytokinesis, we detected also strong TF expression in dynamic membrane areas and protrusions of the midbodies, indicating an accumulation of TF in actin-rich membrane areas with high contractile activity. In addition, we were able to demonstrate that immobilized ligands for TF, both catalytically active and inactive FVIIa or anti-TF mAbs, accelerated adhesion and spreading of TF-expressing cancer cells. Thus, our findings support the contention that ligation of cellular TF may be involved in morphogenic processes such as adhesion and spreading by an association to cytoskeletal structures. On the other hand, incubation of these cells with proteolytically active FVIIa but not with covalently inactivated FVIIa (DEGR-FVIIa) or anti-TF mAbs in solution resulted in increased motility of these cells, indicating that not only ligation of TF but also the proteolytic activity of TF-FVIIa complex is involved in cell migration.

Actin Cytoskeleton

Reverse motion of organelles with myosin molecules along bundles of the actin filaments in a Characean internodal cell.

We have visualized bundles of the actin filaments of a Characean internodal cell and investigated the sliding motion of organelles with myosin on the bundles. The investigation revealed that a power spectrum of the sliding velocity time series of the organelle has two remarkable peaks near 4 and 7.5 Hz. This suggests that myosin molecules attached to the organelle not independently but cooperatively produce the sliding force. Moreover, we have found that some organelles move in the opposite direction of their sliding motion for several hundred milliseconds along the bundles. The fluctuation analysis of that motion showed that a power spectrum profile of the reverse velocity time series almost agreed with that of the sliding velocity time series. This result suggests that the dynamics of the reverse motion is the same as that of the sliding motion.

Actin Cytoskeleton