membrane extension
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PLoS Genetics ◽  
2021 ◽  
Vol 17 (8) ◽  
pp. e1009727
Author(s):  
Tsuyoshi S. Nakamura ◽  
Yasuyuki Suda ◽  
Kenji Muneshige ◽  
Yuji Fujieda ◽  
Yuuya Okumura ◽  
...  

Vps13 family proteins are proposed to function in bulk lipid transfer between membranes, but little is known about their regulation. During sporulation of Saccharomyces cerevisiae, Vps13 localizes to the prospore membrane (PSM) via the Spo71–Spo73 adaptor complex. We previously reported that loss of any of these proteins causes PSM extension and subsequent sporulation defects, yet their precise function remains unclear. Here, we performed a genetic screen and identified genes coding for a fragment of phosphatidylinositol (PI) 4-kinase catalytic subunit and PI 4-kinase noncatalytic subunit as multicopy suppressors of spo73Δ. Further genetic and cytological analyses revealed that lowering PI4P levels in the PSM rescues the spo73Δ defects. Furthermore, overexpression of VPS13 and lowering PI4P levels synergistically rescued the defect of a spo71Δ spo73Δ double mutant, suggesting that PI4P might regulate Vps13 function. In addition, we show that an N-terminal fragment of Vps13 has affinity for the endoplasmic reticulum (ER), and ER-plasma membrane (PM) tethers localize along the PSM in a manner dependent on Vps13 and the adaptor complex. These observations suggest that Vps13 and the adaptor complex recruit ER-PM tethers to ER-PSM contact sites. Our analysis revealed that involvement of a phosphoinositide, PI4P, in regulation of Vps13, and also suggest that distinct contact site proteins function cooperatively to promote de novo membrane formation.


2020 ◽  
Vol 10 (1) ◽  
Author(s):  
Chia-Kang Tsao ◽  
Yu Fen Huang ◽  
Y. Henry Sun

Abstract The retinal basal glia (RBG) is a group of glia that migrates from the optic stalk into the third instar larval eye disc while the photoreceptor cells (PR) are differentiating. The RBGs are grouped into three major classes based on molecular and morphological characteristics: surface glia (SG), wrapping glia (WG) and carpet glia (CG). The SGs migrate and divide. The WGs are postmitotic and wraps PR axons. The CGs have giant nucleus and extensive membrane extension that each covers half of the eye disc. In this study, we used lineage tracing methods to determine the lineage relationships among these glia subtypes and the temporal profile of the lineage decisions for RBG development. We found that the CG lineage segregated from the other RBG very early in the embryonic stage. It has been proposed that the SGs migrate under the CG membrane, which prevented SGs from contacting with the PR axons lying above the CG membrane. Upon passing the front of the CG membrane, which is slightly behind the morphogenetic furrow that marks the front of PR differentiation, the migrating SG contact the nascent PR axon, which in turn release FGF to induce SGs’ differentiation into WG. Interestingly, we found that SGs are equally distributed apical and basal to the CG membrane, so that the apical SGs are not prevented from contacting PR axons by CG membrane. Clonal analysis reveals that the apical and basal RBG are derived from distinct lineages determined before they enter the eye disc. Moreover, the basal SG lack the competence to respond to FGFR signaling, preventing its differentiation into WG. Our findings suggest that this novel glia-to-glia differentiation is both dependent on early lineage decision and on a yet unidentified regulatory mechanism, which can provide spatiotemporal coordination of WG differentiation with the progressive differentiation of photoreceptor neurons.


2018 ◽  
Author(s):  
Jerome Teuliere ◽  
Gian Garriga

Asymmetric divisions often produce daughter cells that differ in both fate and size. The Caenorhabditis elegans HAM-1 protein regulates both daughter cell fate and daughter cell size asymmetry (DCSA) in a subset of asymmetric divisions. Here we focus on the divisions of the Q.a and Q.p neuroblasts, which use distinct mechanisms to divide with opposite polarity. Q.a divides by a ham-1-dependent, spindle-independent, myosin-dependent mechanism to produce a smaller anterior daughter that dies, whereas Q.p divides by a ham-1-independent, spindle-dependent, myosin-independent mechanism to produce a smaller posterior daughter that dies. Despite these differences, we found that membrane extension at the posterior of Q.a and at the anterior of Q.p promoted DCSA in these cells by a Wiscott-Aldrich protein (WASp)-dependent mechanism and that in ham-1 mutant Q.a divisions, the polarity of this extension was reversed. In addition, the spindle moved posteriorly during the Q.a division in a ham-1 mutant, a phenotype normally exhibited by Q.p. We found that this spindle movement in wild-type Q.p divisions required Gα proteins that promote spindle movement in other asymmetric divisions, and GPR-1, a protein involved in linking G proteins to microtubule asters, localized to the posterior cortex of Q.p. Genetic interactions suggest that ham-1 mutant Q.a divisions also require Gα proteins function to divide with a reversed polarity. The transformation of Q.a to Q.p-like polarity in the ham-1 mutant, however, appeared incomplete: ham-1 loss did not alter the asymmetric localization of the non-muscle myosin NMY-2 to the anterior cortex of Q.a. A GFP tagged ham-1 transgene revealed that Q.a but not Q.p expressed ham-1. Finally, we show that HAM-1 has both cortical and nuclear functions in Q,a DCSA. We propose a model where HAM-1 modifies a default Q.p-type polarity by localizing WASp function to the posterior Q.a membrane and by interfering with G-protein mediated spindle movement.


Development ◽  
2018 ◽  
Vol 145 (7) ◽  
pp. dev159186 ◽  
Author(s):  
Yu-Han Su ◽  
Elham Rastegri ◽  
Shih-Han Kao ◽  
Chun-Min Lai ◽  
Kun-Yang Lin ◽  
...  

2017 ◽  
Vol 28 (26) ◽  
pp. 3881-3895 ◽  
Author(s):  
Tsuyoshi S. Nakamura ◽  
Yumi Numajiri ◽  
Yuuya Okumura ◽  
Junji Hidaka ◽  
Takayuki Tanaka ◽  
...  

During the developmental process of sporulation in Saccharomyces cerevisiae, membrane structures called prospore membranes are formed de novo, expand, extend, acquire a round shape, and finally become plasma membranes of the spores. GIP1 encodes a regulatory/targeting subunit of protein phosphatase type 1 that is required for sporulation. Gip1 recruits the catalytic subunit Glc7 to septin structures that form along the prospore membrane; however, the molecular basis of its localization and function is not fully understood. Here we show that Gip1 changes its localization dynamically and is required for prospore membrane extension. Gip1 first associates with the spindle pole body as the prospore membrane forms, moves onto the prospore membrane and then to the septins as the membrane extends, distributes around the prospore membrane after closure, and finally translocates into the nucleus in the maturing spore. Deletion and mutation analyses reveal distinct sequences in Gip1 that are required for different localizations and for association with Glc7. Binding to Glc7 is also required for proper localization. Strikingly, localization to the prospore membrane, but not association with septins, is important for Gip1 function. Further, our genetic analysis suggests that a Gip1–Glc7 phosphatase complex regulates prospore membrane extension in parallel to the previously reported Vps13, Spo71, Spo73 pathway.


2016 ◽  
Vol 27 (13) ◽  
pp. 2064-2079 ◽  
Author(s):  
Aparna Sherlekar ◽  
Richa Rikhy

Coordinated membrane and cytoskeletal remodeling activities are required for membrane extension in processes such as cytokinesis and syncytial nuclear division cycles in Drosophila. Pseudocleavage furrow membranes in the syncytial Drosophila blastoderm embryo show rapid extension and retraction regulated by actin-remodeling proteins. The F-BAR domain protein Syndapin (Synd) is involved in membrane tubulation, endocytosis, and, uniquely, in F-actin stability. Here we report a role for Synd in actin-regulated pseudocleavage furrow formation. Synd localized to these furrows, and its loss resulted in short, disorganized furrows. Synd presence was important for the recruitment of the septin Peanut and distribution of Diaphanous and F-actin at furrows. Synd and Peanut were both absent in furrow-initiation mutants of RhoGEF2 and Diaphanous and in furrow-progression mutants of Anillin. Synd overexpression in rhogef2 mutants reversed its furrow-extension phenotypes, Peanut and Diaphanous recruitment, and F-actin organization. We conclude that Synd plays an important role in pseudocleavage furrow extension, and this role is also likely to be crucial in cleavage furrow formation during cell division.


mSphere ◽  
2015 ◽  
Vol 1 (1) ◽  
Author(s):  
Yuuya Okumura ◽  
Tsuyoshi S. Nakamura ◽  
Takayuki Tanaka ◽  
Ichiro Inoue ◽  
Yasuyuki Suda ◽  
...  

ABSTRACT Prospore membrane formation consists of de novo double-membrane formation, which occurs during the developmental process of sporulation in Saccharomyces cerevisiae. Membranes are formed into their proper size and shape, and thus, prospore membrane formation has been studied as a general model of membrane formation. We identified SPO73, previously shown to be required for spore wall formation, as an additional gene involved in prospore membrane extension. Genetic and cell biological analyses suggested that Spo73 functions on the prospore membrane with other factors in prospore membrane extension, counteracting the bending force of the prospore membrane. Spo73 is the first dysferlin domain-only protein ever analyzed. The dysferlin domain is conserved from yeast to mammals and is found in dysferlin proteins, which are involved in dysferlinopathy, although the precise function of the domain is unknown. Continued analysis of Spo73 will contribute to our understanding of the function of dysferlin domains and dysferlinopathy. Sporulation of Saccharomyces cerevisiae is a developmental process in which an ascus containing four haploid spores forms from a diploid cell. During this process, newly formed membrane structures called prospore membranes extend along the nuclear envelope and engulf and package daughter nuclei along with cytosol and organelles to form precursors of spores. Proteins involved in prospore membrane extension, Vps13 and Spo71, have recently been reported; however, the overall mechanism of membrane extension remains unclear. Here, we identified Spo73 as an additional factor involved in prospore membrane extension. Analysis of a spo73∆ mutant revealed that it shows defects similar to those of a spo71∆ mutant during prospore membrane formation. Spo73 localizes to the prospore membrane, and this localization is independent of Spo71 and Vps13. In contrast, a Spo73 protein carrying mutations in a surface basic patch mislocalizes to the cytoplasm and overexpression of Spo71 can partially rescue localization to the prospore membrane. Similar to spo71∆ mutants, spo73∆ mutants display genetic interactions with the mutations in the SMA2 and SPO1 genes involved in prospore membrane bending. Further, our bioinformatic analysis revealed that Spo73 is a dysferlin domain-only protein. Thus, these results suggest that a dysferlin domain-only protein, Spo73, functions with a dual pleckstrin homology domain protein, Spo71, in prospore membrane extension. Analysis of Spo73 will provide insights into the conserved function of dysferlin domains, which is related to dysferlinopathy. IMPORTANCE Prospore membrane formation consists of de novo double-membrane formation, which occurs during the developmental process of sporulation in Saccharomyces cerevisiae. Membranes are formed into their proper size and shape, and thus, prospore membrane formation has been studied as a general model of membrane formation. We identified SPO73, previously shown to be required for spore wall formation, as an additional gene involved in prospore membrane extension. Genetic and cell biological analyses suggested that Spo73 functions on the prospore membrane with other factors in prospore membrane extension, counteracting the bending force of the prospore membrane. Spo73 is the first dysferlin domain-only protein ever analyzed. The dysferlin domain is conserved from yeast to mammals and is found in dysferlin proteins, which are involved in dysferlinopathy, although the precise function of the domain is unknown. Continued analysis of Spo73 will contribute to our understanding of the function of dysferlin domains and dysferlinopathy.


2015 ◽  
Vol 112 (37) ◽  
pp. E5150-E5159 ◽  
Author(s):  
Violaine Delorme-Walker ◽  
Ji-Yeon Seo ◽  
Antje Gohla ◽  
Bruce Fowler ◽  
Ben Bohl ◽  
...  

Cofilin, a critical player of actin dynamics, is spatially and temporally regulated to control the direction and force of membrane extension required for cell locomotion. In carcinoma cells, although the signaling pathways regulating cofilin activity to control cell direction have been established, the molecular machinery required to generate the force of the protrusion remains unclear. We show that the cofilin phosphatase chronophin (CIN) spatiotemporally regulates cofilin activity at the cell edge to generate persistent membrane extension. We show that CIN translocates to the leading edge in a PI3-kinase–, Rac1-, and cofilin-dependent manner after EGF stimulation to activate cofilin, promotes actin free barbed end formation, accelerates actin turnover, and enhances membrane protrusion. In addition, we establish that CIN is crucial for the balance of protrusion/retraction events during cell migration. Thus, CIN coordinates the leading edge dynamics by controlling active cofilin levels to promote MTLn3 cell protrusion.


2015 ◽  
Vol 397 (2) ◽  
pp. 225-236 ◽  
Author(s):  
Hao Lu ◽  
Meng Tiak Toh ◽  
Vijayashankaranarayanan Narasimhan ◽  
Surin Kumar Thamilselvam ◽  
Semil P. Choksi ◽  
...  

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