Ena/VASP processive elongation is modulated by avidity on actin filaments bundled by the filopodia cross-linker fascin
MOLECULAR BIOLOGY OF THE CELL
Authors: Harker, Alyssa J.; Katkar, Harshwardhan H.; Bidone, Tamara C.; Aydin, Fikret; Voth, Gregory A.; Applewhite, Derek A.; Kovar, David R.
Abstract
Ena/VASP tetramers are processive actin elongation factors that localize to diverse F-actin networks composed of filaments bundled by different cross-linking proteins, such as filopodia (fascin), lamellipodia (fimbrin), and stress fibers (alpha-actinin). Previously, we found that Ena takes approximately threefold longer processive runs on trailing barbed ends of fascin-bundled F-actin. Here, we used single-molecule TIRFM (total internal reflection fluorescence microscopy) and developed a kinetic model to further dissect Ena/VASP's processive mechanism on bundled filaments. We discovered that Ena's enhanced processivity on trailing barbed ends is specific to fascin bundles, with no enhancement on fimbrin or alpha-actinin bundles. Notably, Ena/VASP's processive run length increases with the number of both fascin-bundled filaments and Ena "arms," revealing avidity facilitates enhanced processivity. Consistently, Ena tetramers form more filopodia than mutant dimer and trimers in Drosophila culture cells. Moreover, enhanced processivity on trailing barbed ends of fascin-bundled filaments is an evolutionarily conserved property of Ena/VASP homologues, including human VASP and Caenorhabditis elegans UNC-34. These results demonstrate that Ena tetramers are tailored for enhanced processivity on fascin bundles and that avidity of multiple arms associating with multiple filaments is critical for this process. Furthermore, we discovered a novel regulatory process whereby bundle size and bundling protein specificity control activities of a processive assembly factor.
Surface modification for nano-lignocellulose fiber through vapor-phase-assisted surface polymerization
JOURNAL OF POLYMER SCIENCE PART A-POLYMER CHEMISTRY
Authors: Eksiler, Kubra; Andou, Yoshito; Ariffin, Hidayah; Shirai, Yoshihito
Abstract
This study addresses the inherent issues surrounding surface modification methods of nanofibers and proposes an environmentally friendly and less toxic strategy for the surface modification of hydrophilic nanofiber. From the continuation of our previous work, which discussed the easy production of nanofiber (average size: 127 nm) from oil palm mesocarp fiber (OPMF), in this work, the surface of nanofibers (M-IL-OPMF) were modified through vapor-phase-assisted surface polymerization (VASP) to improve the affinity of interface between the polymer grafted M-IL-OPMF and non-polar matrix. VASP of epsilon-caprolactone was successfully proceeded from the [M-IL-OPMF] at 70 degrees C for 24 h and 72 h, and compositions were estimated to be 35.7% fiber/64.3% polymer and 27.8% fiber/72.2% polymer. To confirm the grafting of PCL, size-exclusion chromatography (SEC) and Fourier transform infrared (FT-IR) spectroscopy, thermogravimetry (TG), and dispersibility test in hydrophobic solvent were carried out. (c) 2019 Wiley Periodicals, Inc. J. Polym. Sci., Part A: Polym. Chem. 2019