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1.
Cell ; 187(18): 5081-5101.e19, 2024 Sep 05.
Article in English | MEDLINE | ID: mdl-38996528

ABSTRACT

In developing brains, axons exhibit remarkable precision in selecting synaptic partners among many non-partner cells. Evolutionarily conserved teneurins are transmembrane proteins that instruct synaptic partner matching. However, how intracellular signaling pathways execute teneurins' functions is unclear. Here, we use in situ proximity labeling to obtain the intracellular interactome of a teneurin (Ten-m) in the Drosophila brain. Genetic interaction studies using quantitative partner matching assays in both olfactory receptor neurons (ORNs) and projection neurons (PNs) reveal a common pathway: Ten-m binds to and negatively regulates a RhoGAP, thus activating the Rac1 small GTPases to promote synaptic partner matching. Developmental analyses with single-axon resolution identify the cellular mechanism of synaptic partner matching: Ten-m signaling promotes local F-actin levels and stabilizes ORN axon branches that contact partner PN dendrites. Combining spatial proteomics and high-resolution phenotypic analyses, this study advanced our understanding of both cellular and molecular mechanisms of synaptic partner matching.


Subject(s)
Axons , Drosophila Proteins , Drosophila melanogaster , Nerve Tissue Proteins , Olfactory Receptor Neurons , Signal Transduction , Synapses , Animals , Drosophila Proteins/metabolism , Drosophila melanogaster/metabolism , Nerve Tissue Proteins/metabolism , Olfactory Receptor Neurons/metabolism , Axons/metabolism , Synapses/metabolism , Actins/metabolism , GTPase-Activating Proteins/metabolism , Brain/metabolism , Dendrites/metabolism , rac1 GTP-Binding Protein/metabolism , Tenascin , rac GTP-Binding Proteins
2.
Mol Cell ; 84(18): 3482-3496.e7, 2024 Sep 19.
Article in English | MEDLINE | ID: mdl-39178862

ABSTRACT

Binding of the bacterial Rho helicase to nascent transcripts triggers Rho-dependent transcription termination (RDTT) in response to cellular signals that modulate mRNA structure and accessibility of Rho utilization (Rut) sites. Despite the impact of temperature on RNA structure, RDTT was never linked to the bacterial response to temperature shifts. We show that Rho is a central player in the cold-shock response (CSR), challenging the current view that CSR is primarily a posttranscriptional program. We identify Rut sites in 5'-untranslated regions of key CSR genes/operons (cspA, cspB, cspG, and nsrR-rnr-yjfHI) that trigger premature RDTT at 37°C but not at 15°C. High concentrations of RNA chaperone CspA or nucleotide changes in the cspA mRNA leader reduce RDTT efficiency, revealing how RNA restructuring directs Rho to activate CSR genes during the cold shock and to silence them during cold acclimation. These findings establish a paradigm for how RNA thermosensors can modulate gene expression.


Subject(s)
5' Untranslated Regions , Cold-Shock Response , Escherichia coli Proteins , Escherichia coli , Gene Expression Regulation, Bacterial , RNA, Bacterial , Rho Factor , Rho Factor/metabolism , Rho Factor/genetics , Escherichia coli Proteins/genetics , Escherichia coli Proteins/metabolism , Cold-Shock Response/genetics , RNA, Bacterial/genetics , RNA, Bacterial/metabolism , Escherichia coli/genetics , Escherichia coli/metabolism , RNA, Messenger/genetics , RNA, Messenger/metabolism , Transcription Termination, Genetic , Cold Temperature , Transcription, Genetic , Operon , Cold Shock Proteins and Peptides
3.
Annu Rev Biochem ; 85: 319-47, 2016 Jun 02.
Article in English | MEDLINE | ID: mdl-27023849

ABSTRACT

Transcript termination is essential for accurate gene expression and the removal of RNA polymerase (RNAP) at the ends of transcription units. In bacteria, two mechanisms are responsible for proper transcript termination: intrinsic termination and Rho-dependent termination. Intrinsic termination is mediated by signals directly encoded within the DNA template and nascent RNA, whereas Rho-dependent termination relies upon the adenosine triphosphate-dependent RNA translocase Rho, which binds nascent RNA and dissociates the elongation complex. Although significant progress has been made in understanding these pathways, fundamental details remain undetermined. Among those that remain unresolved are the existence of an inactivated intermediate in the intrinsic termination pathway, the role of Rho-RNAP interactions in Rho-dependent termination, and the mechanisms by which accessory factors and nucleoid-associated proteins affect termination. We describe current knowledge, discuss key outstanding questions, and highlight the importance of defining the structural rearrangements of RNAP that are involved in the two mechanisms of transcript termination.


Subject(s)
DNA-Directed RNA Polymerases/genetics , Escherichia coli Proteins/genetics , Escherichia coli/genetics , Peptide Elongation Factors/genetics , Rho Factor/genetics , Transcription Factors/genetics , Transcription Termination, Genetic , DNA, Bacterial/chemistry , DNA, Bacterial/genetics , DNA, Bacterial/metabolism , DNA-Directed RNA Polymerases/chemistry , DNA-Directed RNA Polymerases/metabolism , Escherichia coli/metabolism , Escherichia coli Proteins/metabolism , Kinetics , Models, Molecular , Nucleic Acid Conformation , Peptide Elongation Factors/metabolism , Protein Binding , Protein Transport , RNA, Bacterial/chemistry , RNA, Bacterial/genetics , RNA, Bacterial/metabolism , Rho Factor/metabolism , Transcription Factors/metabolism
4.
Cell ; 167(1): 111-121.e13, 2016 Sep 22.
Article in English | MEDLINE | ID: mdl-27662085

ABSTRACT

Bacterial small RNAs (sRNAs) have been implicated in various aspects of post-transcriptional gene regulation. Here, we demonstrate that sRNAs also act at the level of transcription termination. We use the rpoS gene, which encodes a general stress sigma factor σ(S), as a model system, and show that sRNAs DsrA, ArcZ, and RprA bind the rpoS 5'UTR to suppress premature Rho-dependent transcription termination, both in vitro and in vivo. sRNA-mediated antitermination markedly stimulates transcription of rpoS during the transition to the stationary phase of growth, thereby facilitating a rapid adjustment of bacteria to global metabolic changes. Next generation RNA sequencing and bioinformatic analysis indicate that Rho functions as a global "attenuator" of transcription, acting at the 5'UTR of hundreds of bacterial genes, and that its suppression by sRNAs is a widespread mode of bacterial gene regulation.


Subject(s)
Bacterial Proteins/metabolism , Escherichia coli/genetics , Gene Expression Regulation, Bacterial , RNA, Small Untranslated/metabolism , Sigma Factor/metabolism , Transcription Termination, Genetic , 5' Untranslated Regions
5.
Physiol Rev ; 102(1): 455-510, 2022 01 01.
Article in English | MEDLINE | ID: mdl-34541899

ABSTRACT

Rho GTPases are a family of small G proteins that regulate a wide array of cellular processes related to their key roles controlling the cytoskeleton. Cancer is a multistep disease caused by the accumulation of genetic mutations and epigenetic alterations, from the initial stages of cancer development when cells in normal tissues undergo transformation, to the acquisition of invasive and metastatic traits, responsible for a large number of cancer related deaths. In this review, we discuss the role of Rho GTPase signaling in cancer in every step of disease progression. Rho GTPases contribute to tumor initiation and progression, by regulating proliferation and apoptosis, but also metabolism, senescence, and cancer cell stemness. Rho GTPases play a major role in cell migration and in the metastatic process. They are also involved in interactions with the tumor microenvironment and regulate inflammation, contributing to cancer progression. After years of intensive research, we highlight the importance of relevant models in the Rho GTPase field, and we reflect on the therapeutic opportunities arising for cancer patients.


Subject(s)
Cell Transformation, Neoplastic/metabolism , Neoplasms/drug therapy , Tumor Microenvironment/physiology , rho GTP-Binding Proteins/metabolism , Animals , Cell Movement/physiology , Cell Transformation, Neoplastic/immunology , Humans , Signal Transduction/genetics
6.
Mol Cell ; 81(2): 281-292.e8, 2021 01 21.
Article in English | MEDLINE | ID: mdl-33296676

ABSTRACT

Rho is a general transcription termination factor playing essential roles in RNA polymerase (RNAP) recycling, gene regulation, and genomic stability in most bacteria. Traditional models of transcription termination postulate that hexameric Rho loads onto RNA prior to contacting RNAP and then translocates along the transcript in pursuit of the moving RNAP to pull RNA from it. Here, we report the cryoelectron microscopy (cryo-EM) structures of two termination process intermediates. Prior to interacting with RNA, Rho forms a specific "pre-termination complex" (PTC) with RNAP and elongation factors NusA and NusG, which stabilize the PTC. RNA exiting RNAP interacts with NusA before entering the central channel of Rho from the distal C-terminal side of the ring. We map the principal interactions in the PTC and demonstrate their critical role in termination. Our results support a mechanism in which the formation of a persistent PTC is a prerequisite for termination.


Subject(s)
DNA-Directed RNA Polymerases/chemistry , Escherichia coli Proteins/chemistry , Escherichia coli/genetics , Gene Expression Regulation, Bacterial , Peptide Elongation Factors/chemistry , Transcription Factors/chemistry , Transcription Termination, Genetic , Transcriptional Elongation Factors/chemistry , Amino Acid Sequence , Binding Sites , Cloning, Molecular , Cryoelectron Microscopy , DNA, Bacterial/chemistry , DNA, Bacterial/genetics , DNA, Bacterial/metabolism , DNA-Directed RNA Polymerases/genetics , DNA-Directed RNA Polymerases/metabolism , Escherichia coli/metabolism , Escherichia coli Proteins/genetics , Escherichia coli Proteins/metabolism , Genetic Vectors/chemistry , Genetic Vectors/metabolism , Models, Molecular , Peptide Elongation Factors/genetics , Peptide Elongation Factors/metabolism , Protein Binding , Protein Conformation, alpha-Helical , Protein Conformation, beta-Strand , Protein Interaction Domains and Motifs , Protein Subunits/chemistry , Protein Subunits/genetics , Protein Subunits/metabolism , RNA, Bacterial/chemistry , RNA, Bacterial/genetics , RNA, Bacterial/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism , Transcriptional Elongation Factors/genetics , Transcriptional Elongation Factors/metabolism
7.
Development ; 151(3)2024 Feb 01.
Article in English | MEDLINE | ID: mdl-38240393

ABSTRACT

The spheroidal shape of the eye lens is crucial for precise light focusing onto the retina. This shape is determined by concentrically aligned, convexly elongated lens fiber cells along the anterior and posterior axis of the lens. Upon differentiation at the lens equator, the fiber cells increase in height as their apical and basal tips migrate towards the anterior and posterior poles, respectively. The forces driving this elongation and migration remain unclear. We found that, in the mouse lens, membrane protrusions or lamellipodia are observed only in the maturing fibers undergoing cell curve conversion, indicating that lamellipodium formation is not the primary driver of earlier fiber migration. We demonstrated that elevated levels of fibroblast growth factor (FGF) suppressed the extension of Rac-dependent protrusions, suggesting changes in the activity of FGF controlling Rac activity, switching to lamellipodium-driven migration. Inhibitors of ROCK, myosin and actin reduced the height of both early and later fibers, indicating that elongation of these fibers relies on actomyosin contractility. Consistent with this, active RhoA was detected throughout these fibers. Given that FGF promotes fiber elongation, we propose that it does so through regulation of Rho activity.


Subject(s)
Fibroblast Growth Factors , Lens, Crystalline , Mice , Animals , Lens, Crystalline/metabolism , Epithelium/metabolism , Actins/metabolism , Cell Differentiation/physiology
8.
Development ; 151(20)2024 Oct 15.
Article in English | MEDLINE | ID: mdl-39133134

ABSTRACT

Rho/Rac of plant (ROP) GTPases are plant-specific proteins that function as molecular switches, activated by guanine nucleotide exchange factors (GEFs) and inactivated by GTPase-activating proteins (GAPs). The bryophyte Marchantia polymorpha contains single copies of ROP (MpROP), GEFs [ROPGEF and SPIKE (SPK)] and GAPs [ROPGAP and ROP ENHANCER (REN)]. MpROP regulates the development of various tissues and organs, such as rhizoids, gemmae and air chambers. The ROPGEF KARAPPO (MpKAR) is essential for gemma initiation, but the functions of other ROP regulatory factors are less understood. This study focused on two GAPs: MpROPGAP and MpREN. Mpren single mutants showed defects in thallus growth, rhizoid tip growth, gemma development, and air-chamber formation, whereas Mpropgap mutants showed no visible abnormalities. However, Mpropgap Mpren double mutants had more severe phenotypes than the Mpren single mutants, suggesting backup roles of MpROPGAP in processes involving MpREN. Overexpression of MpROPGAP and MpREN resulted in similar gametophyte defects, highlighting the importance of MpROP activation/inactivation cycling (or balancing). Thus, MpREN predominantly, and MpROPGAP as a backup, regulate gametophyte development, likely by controlling MpROP activation in M. polymorpha.


Subject(s)
Marchantia , Plant Proteins , Marchantia/genetics , Marchantia/metabolism , Marchantia/growth & development , Plant Proteins/metabolism , Plant Proteins/genetics , Gene Expression Regulation, Plant , Mutation/genetics , Guanine Nucleotide Exchange Factors/metabolism , Guanine Nucleotide Exchange Factors/genetics , GTPase-Activating Proteins/metabolism , GTPase-Activating Proteins/genetics , Organogenesis, Plant/genetics , rho GTP-Binding Proteins/metabolism , rho GTP-Binding Proteins/genetics
9.
Proc Natl Acad Sci U S A ; 121(39): e2407083121, 2024 Sep 24.
Article in English | MEDLINE | ID: mdl-39292751

ABSTRACT

Ovulation is critical for sexual reproduction and consists of the process of liberating fertilizable oocytes from their somatic follicle capsules, also known as follicle rupture. The mechanical force for oocyte expulsion is largely unknown in many species. Our previous work demonstrated that Drosophila ovulation, as in mammals, requires the proteolytic degradation of the posterior follicle wall and follicle rupture to release the mature oocyte from a layer of somatic follicle cells. Here, we identified actomyosin contraction in somatic follicle cells as the major mechanical force for follicle rupture. Filamentous actin (F-actin) and nonmuscle myosin II (NMII) are highly enriched in the cortex of follicle cells upon stimulation with octopamine (OA), a monoamine critical for Drosophila ovulation. Pharmacological disruption of F-actin polymerization prevented follicle rupture without interfering with the follicle wall breakdown. In addition, we demonstrated that OA induces Rho1 guanosine triphosphate (GTP)ase activation in the follicle cell cortex, which activates Ras homolog (Rho) kinase to promote actomyosin contraction and follicle rupture. All these results led us to conclude that OA signaling induces actomyosin cortex enrichment and contractility, which generates the mechanical force for follicle rupture during Drosophila ovulation. Due to the conserved nature of actomyosin contraction, this work could shed light on the mechanical force required for follicle rupture in other species including humans.


Subject(s)
Actomyosin , Drosophila Proteins , Octopamine , Ovarian Follicle , Ovulation , Animals , Actomyosin/metabolism , Ovulation/physiology , Ovarian Follicle/metabolism , Ovarian Follicle/physiology , Female , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Octopamine/metabolism , Actins/metabolism , Drosophila melanogaster/physiology , Myosin Type II/metabolism , Epithelium/metabolism , rho GTP-Binding Proteins/metabolism , Oocytes/metabolism , Drosophila/physiology
10.
Proc Natl Acad Sci U S A ; 121(22): e2318248121, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38787878

ABSTRACT

For eukaryotic cells to heal wounds, respond to immune signals, or metastasize, they must migrate, often by adhering to extracellular matrix (ECM). Cells may also deposit ECM components, leaving behind a footprint that influences their crawling. Recent experiments showed that some epithelial cell lines on micropatterned adhesive stripes move persistently in regions they have previously crawled over, where footprints have been formed, but barely advance into unexplored regions, creating an oscillatory migration of increasing amplitude. Here, we explore through mathematical modeling how footprint deposition and cell responses to footprint combine to allow cells to develop oscillation and other complex migratory motions. We simulate cell crawling with a phase field model coupled to a biochemical model of cell polarity, assuming local contact with the deposited footprint activates Rac1, a protein that establishes the cell's front. Depending on footprint deposition rate and response to the footprint, cells on micropatterned lines can display many types of motility, including confined, oscillatory, and persistent motion. On two-dimensional (2D) substrates, we predict a transition between cells undergoing circular motion and cells developing an exploratory phenotype. Small quantitative changes in a cell's interaction with its footprint can completely alter exploration, allowing cells to tightly regulate their motion, leading to different motility phenotypes (confined vs. exploratory) in different cells when deposition or sensing is variable from cell to cell. Consistent with our computational predictions, we find in earlier experimental data evidence of cells undergoing both circular and exploratory motion.


Subject(s)
Cell Movement , Extracellular Matrix , Cell Movement/physiology , Extracellular Matrix/metabolism , Extracellular Matrix/physiology , rac1 GTP-Binding Protein/metabolism , Humans , Cell Polarity/physiology , Models, Biological , Animals , Cell Adhesion/physiology , Epithelial Cells/metabolism , Epithelial Cells/cytology , Epithelial Cells/physiology
11.
J Cell Sci ; 137(13)2024 07 01.
Article in English | MEDLINE | ID: mdl-38899547

ABSTRACT

The Rho family of GTPases plays a crucial role in cellular mechanics by regulating actomyosin contractility through the parallel induction of actin and myosin assembly and function. Using exocytosis of large vesicles in the Drosophila larval salivary gland as a model, we followed the spatiotemporal regulation of Rho1, which in turn creates distinct organization patterns of actin and myosin. After vesicle fusion, low levels of activated Rho1 reach the vesicle membrane and drive actin nucleation in an uneven, spread-out pattern. Subsequently, the Rho1 activator RhoGEF2 distributes as an irregular meshwork on the vesicle membrane, activating Rho1 in a corresponding punctate pattern and driving local myosin II recruitment, resulting in vesicle constriction. Vesicle membrane buckling and subsequent crumpling occur at local sites of high myosin II concentrations. These findings indicate that distinct thresholds for activated Rho1 create a biphasic mode of actomyosin assembly, inducing anisotropic membrane crumpling during exocrine secretion.


Subject(s)
Drosophila Proteins , Exocytosis , Myosin Type II , rho GTP-Binding Proteins , Animals , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Myosin Type II/metabolism , rho GTP-Binding Proteins/metabolism , rho GTP-Binding Proteins/genetics , Exocytosis/physiology , Drosophila melanogaster/metabolism , Actins/metabolism , Actomyosin/metabolism , Larva/metabolism , Salivary Glands/metabolism , Salivary Glands/cytology , Guanine Nucleotide Exchange Factors/metabolism , Guanine Nucleotide Exchange Factors/genetics , Secretory Vesicles/metabolism
12.
J Cell Sci ; 137(8)2024 04 15.
Article in English | MEDLINE | ID: mdl-38563084

ABSTRACT

Angiogenesis is a tightly controlled dynamic process demanding a delicate equilibrium between pro-angiogenic signals and factors that promote vascular stability. The spatiotemporal activation of the transcriptional co-factors YAP (herein referring to YAP1) and TAZ (also known WWTR1), collectively denoted YAP/TAZ, is crucial to allow for efficient collective endothelial migration in angiogenesis. The focal adhesion protein deleted-in-liver-cancer-1 (DLC1) was recently described as a transcriptional downstream target of YAP/TAZ in endothelial cells. In this study, we uncover a negative feedback loop between DLC1 expression and YAP activity during collective migration and sprouting angiogenesis. In particular, our study demonstrates that signaling via the RhoGAP domain of DLC1 reduces nuclear localization of YAP and its transcriptional activity. Moreover, the RhoGAP activity of DLC1 is essential for YAP-mediated cellular processes, including the regulation of focal adhesion turnover, traction forces, and sprouting angiogenesis. We show that DLC1 restricts intracellular cytoskeletal tension by inhibiting Rho signaling at the basal adhesion plane, consequently reducing nuclear YAP localization. Collectively, these findings underscore the significance of DLC1 expression levels and its function in mitigating intracellular tension as a pivotal mechanotransductive feedback mechanism that finely tunes YAP activity throughout the process of sprouting angiogenesis.


Subject(s)
Focal Adhesions , GTPase-Activating Proteins , Mechanotransduction, Cellular , Tumor Suppressor Proteins , YAP-Signaling Proteins , Animals , Humans , Adaptor Proteins, Signal Transducing/metabolism , Adaptor Proteins, Signal Transducing/genetics , Cell Cycle Proteins/metabolism , Cell Cycle Proteins/genetics , Cell Movement , Feedback, Physiological , Focal Adhesions/metabolism , Focal Adhesions/genetics , GTPase-Activating Proteins/metabolism , GTPase-Activating Proteins/genetics , Human Umbilical Vein Endothelial Cells/metabolism , Mechanotransduction, Cellular/genetics , Neovascularization, Physiologic , Tumor Suppressor Proteins/metabolism , Tumor Suppressor Proteins/genetics , YAP-Signaling Proteins/metabolism
13.
J Cell Sci ; 137(2)2024 01 15.
Article in English | MEDLINE | ID: mdl-38180080

ABSTRACT

RhoU is an atypical member of the Rho family of small G-proteins, which has N- and C-terminal extensions compared to the classic Rho GTPases RhoA, Rac1 and Cdc42, and associates with membranes through C-terminal palmitoylation rather than prenylation. RhoU mRNA expression is upregulated in prostate cancer and is considered a marker for disease progression. Here, we show that RhoU overexpression in prostate cancer cells increases cell migration and invasion. To identify RhoU targets that contribute to its function, we found that RhoU homodimerizes in cells. We map the region involved in this interaction to the C-terminal extension and show that C-terminal palmitoylation is required for self-association. Expression of the isolated C-terminal extension reduces RhoU-induced activation of p21-activated kinases (PAKs), which are known downstream targets for RhoU, and induces cell morphological changes consistent with inhibiting RhoU function. Our results show for the first time that the activity of a Rho family member is stimulated by self-association, and this is important for its activity.


Subject(s)
Prostatic Neoplasms , rho GTP-Binding Proteins , Humans , Male , cdc42 GTP-Binding Protein/genetics , cdc42 GTP-Binding Protein/metabolism , Cell Line, Tumor , Cell Movement/genetics , Prostatic Neoplasms/genetics , Prostatic Neoplasms/metabolism , rho GTP-Binding Proteins/genetics , rho GTP-Binding Proteins/metabolism
14.
Development ; 150(2)2023 01 15.
Article in English | MEDLINE | ID: mdl-36621002

ABSTRACT

The cardiomyocyte phenotypic switch from a proliferative to terminally differentiated state results in the loss of regenerative potential of the mammalian heart shortly after birth. Nonmuscle myosin IIB (NM IIB)-mediated actomyosin contractility regulates cardiomyocyte cytokinesis in the embryonic heart, and NM IIB levels decline after birth, suggesting a role for cellular tension in the regulation of cardiomyocyte cell cycle activity in the postnatal heart. To investigate the role of actomyosin contractility in cardiomyocyte cell cycle arrest, we conditionally activated ROCK2 kinase domain (ROCK2:ER) in the murine postnatal heart. Here, we show that α5/ß1 integrin and fibronectin matrix increase in response to actomyosin-mediated tension. Moreover, activation of ROCK2:ER promotes nuclear translocation of Yap, a mechanosensitive transcriptional co-activator, and enhances cardiomyocyte proliferation. Finally, we show that reduction of myocardial α5 integrin rescues the myocardial proliferation phenotype in ROCK2:ER hearts. These data demonstrate that cardiomyocytes respond to increased intracellular tension by altering their intercellular contacts in favor of cell-matrix interactions, leading to Yap nuclear translocation, thus uncovering a function for nonmuscle myosin contractility in promoting cardiomyocyte proliferation in the postnatal heart.


Subject(s)
Actomyosin , Integrin alpha5 , Animals , Mice , Actin Cytoskeleton/metabolism , Actomyosin/metabolism , Cell Proliferation , Integrin alpha5/metabolism , Mammals/metabolism , Myocytes, Cardiac/metabolism , Transcription Factors/metabolism
15.
RNA ; 30(4): 381-391, 2024 Mar 18.
Article in English | MEDLINE | ID: mdl-38253429

ABSTRACT

Bacterial riboswitches are molecular structures that play a crucial role in controlling gene expression to maintain cellular balance. The Escherichia coli lysC riboswitch has been previously shown to regulate gene expression through translation initiation and mRNA decay. Recent research suggests that lysC gene expression is also influenced by Rho-dependent transcription termination. Through a series of in silico, in vitro, and in vivo experiments, we provide experimental evidence that the lysC riboswitch directly and indirectly modulates Rho transcription termination. Our study demonstrates that Rho-dependent transcription termination plays a significant role in the cotranscriptional regulation of lysC expression. Together with previous studies, our work suggests that lysC expression is governed by a lysine-sensing riboswitch that regulates translation initiation, transcription termination, and mRNA degradation. Notably, both Rho and RNase E target the same region of the RNA molecule, implying that RNase E may degrade Rho-terminated transcripts, providing a means to selectively eliminate these incomplete messenger RNAs. Overall, this study sheds light on the complex regulatory mechanisms used by bacterial riboswitches, emphasizing the role of transcription termination in the control of gene expression and mRNA stability.


Subject(s)
Riboswitch , Riboswitch/genetics , Base Sequence , Escherichia coli/genetics , Escherichia coli/metabolism , Transcription, Genetic , Bacteria/genetics , Gene Expression Regulation, Bacterial , RNA, Bacterial/metabolism
16.
Mol Cell ; 71(6): 911-922.e4, 2018 09 20.
Article in English | MEDLINE | ID: mdl-30122535

ABSTRACT

NusG/Spt5 proteins are the only transcription factors utilized by all cellular organisms. In enterobacteria, NusG antagonizes the transcription termination activity of Rho, a hexameric helicase, during the synthesis of ribosomal and actively translated mRNAs. Paradoxically, NusG helps Rho act on untranslated transcripts, including non-canonical antisense RNAs and those arising from translational stress; how NusG fulfills these disparate functions is unknown. Here, we demonstrate that NusG activates Rho by assisting helicase isomerization from an open-ring, RNA-loading state to a closed-ring, catalytically active translocase. A crystal structure of closed-ring Rho in complex with NusG reveals the physical basis for this activation and further explains how Rho is excluded from translationally competent RNAs. This study demonstrates how a universally conserved transcription factor acts to modulate the activity of a ring-shaped ATPase motor and establishes how the innate sequence bias of a termination factor can be modulated to silence pervasive, aberrant transcription.


Subject(s)
Chromosomal Proteins, Non-Histone/physiology , Escherichia coli Proteins/physiology , Peptide Elongation Factors/physiology , Transcription Factors/physiology , Transcription Termination, Genetic/physiology , Transcriptional Elongation Factors/physiology , Bacterial Proteins , Escherichia coli/metabolism , Escherichia coli Proteins/metabolism , Models, Molecular , Peptide Elongation Factors/metabolism , Protein Conformation , RNA, Bacterial , Rho Factor/metabolism , Rho Factor/physiology , Transcription Factors/metabolism , Transcription, Genetic/genetics , Transcription, Genetic/physiology
17.
Mol Cell ; 72(2): 328-340.e8, 2018 10 18.
Article in English | MEDLINE | ID: mdl-30293781

ABSTRACT

The Hippo pathway plays a crucial role in organ size control and tumor suppression, but its precise regulation is not fully understood. In this study, we discovered that phosphatidic acid (PA)-related lipid signaling is a key regulator of the Hippo pathway. Supplementing PA in various Hippo-activating conditions activates YAP. This PA-related lipid signaling is involved in Rho-mediated YAP activation. Mechanistically, PA directly interacts with Hippo components LATS and NF2 to disrupt LATS-MOB1 complex formation and NF2-mediated LATS membrane translocation and activation, respectively. Inhibition of phospholipase D (PLD)-dependent PA production suppresses YAP oncogenic activities. PLD1 is highly expressed in breast cancer and positively correlates with YAP activation, suggesting their pathological relevance in breast cancer development. Taken together, our study not only reveals a role of PLD-PA lipid signaling in regulating the Hippo pathway but also indicates that the PLD-PA-YAP axis is a potential therapeutic target for cancer treatment.


Subject(s)
Lipid Metabolism/physiology , Phosphatidic Acids/metabolism , Protein Serine-Threonine Kinases/metabolism , Signal Transduction/physiology , Amino Acid Sequence , Animals , Breast Neoplasms/metabolism , Cell Line , Cell Line, Tumor , Female , HEK293 Cells , Hippo Signaling Pathway , Humans , Long-Acting Thyroid Stimulator/metabolism , Mice , Mice, Nude , Neurofibromin 2/metabolism , Nuclear Proteins/metabolism , Phospholipase D/metabolism , Phosphoproteins/metabolism
18.
Bioessays ; : e2400184, 2024 Oct 03.
Article in English | MEDLINE | ID: mdl-39361252

ABSTRACT

The LIM domain kinases (LIMKs) are important actin cytoskeleton regulators. These proteins, LIMK1 and LIMK2, are nodes downstream of Rho GTPases and are the key enzymes that phosphorylate cofilin/actin depolymerization factors to regulate filament severing. They therefore perform an essential role in cascades that control actin depolymerization. Signaling of the LIMKs is carefully regulated by numerous inter- and intra-molecular mechanisms. In this review, we discuss recent findings that improve the understanding of LIM domain kinase regulation mechanisms. We also provide an up-to-date review of the role of the LIM domain kinases, their architectural features, how activity is impacted by other proteins, and the implications of these findings for human health and disease.

19.
Mol Cell Proteomics ; 23(3): 100730, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38311109

ABSTRACT

Vibrio species, the Gram-negative bacterial pathogens causing cholera and sepsis, produce multiple secreted virulence factors for infection and pathogenesis. Among these is the multifunctional-autoprocessing repeats-in-toxin (MARTX) toxin that releases several critical effector domains with distinct functions inside eukaryotic host cells. One such effector domain, the Rho inactivation domain (RID), has been discovered to catalyze long-chain Nε-fatty-acylation on lysine residues of Rho GTPases, causing inactivation of Rho GTPases and disruption of the host actin cytoskeleton. However, whether RID modifies other host proteins to exert additional functions remains to be determined. Herein, we describe the integration of bioorthogonal chemical labeling and quantitative proteomics to globally profile the target proteins modified by RID in living cells. More than 246 proteins are identified as new RID substrates, including many involved in GTPase regulation, cytoskeletal organization, and cell division. We demonstrate that RID extensively Nε-fatty-acylates septin proteins, the fourth cytoskeletal component of mammalian cells with important roles in diverse cellular processes. While affinity purification and mass spectrometry analysis show that RID-mediated Nε-fatty-acylation does not affect septin-septin interactions, this modification increases the membrane association of septins and confers localization to detergent-resistant membrane rafts. As a result, the filamentous assembly and organization of septins are disrupted by RID-mediated Nε-fatty-acylation, further contributing to cytoskeletal and mitotic defects that phenocopy the effects of septin depletion. Overall, our work greatly expands the substrate scope and function of RID and demonstrates the role of RID-mediated Nε-fatty-acylation in manipulating septin localization and organization.


Subject(s)
Bacterial Toxins , Vibrio , Animals , Septins/metabolism , Proteomics , Vibrio/metabolism , rho GTP-Binding Proteins , Acylation , Mammals/metabolism
20.
Proc Natl Acad Sci U S A ; 120(22): e2219854120, 2023 05 30.
Article in English | MEDLINE | ID: mdl-37216516

ABSTRACT

During the intricate process by which cells give rise to tissues, embryonic and adult stem cells are exposed to diverse mechanical signals from the extracellular matrix (ECM) that influence their fate. Cells can sense these cues in part through dynamic generation of protrusions, modulated and controlled by cyclic activation of Rho GTPases. However, it remains unclear how extracellular mechanical signals regulate Rho GTPase activation dynamics and how such rapid, transient activation dynamics are integrated to yield long-term, irreversible cell fate decisions. Here, we report that ECM stiffness cues alter not only the magnitude but also the temporal frequency of RhoA and Cdc42 activation in adult neural stem cells (NSCs). Using optogenetics to control the frequency of RhoA and Cdc42 activation, we further demonstrate that these dynamics are functionally significant, where high- vs. low-frequency activation of RhoA and Cdc42 drives astrocytic vs. neuronal differentiation, respectively. In addition, high-frequency Rho GTPase activation induces sustained phosphorylation of the TGFß pathway effector SMAD1, which in turn drives the astrocytic differentiation. By contrast, under low-frequency Rho GTPase stimulation, cells fail to accumulate SMAD1 phosphorylation and instead undergo neurogenesis. Our findings reveal the temporal patterning of Rho GTPase signaling and the resulting accumulation of an SMAD1 signal as a critical mechanism through which ECM stiffness cues regulate NSC fate.


Subject(s)
Neural Stem Cells , rho GTP-Binding Proteins , rho GTP-Binding Proteins/genetics , rho GTP-Binding Proteins/metabolism , rhoA GTP-Binding Protein/metabolism , cdc42 GTP-Binding Protein/metabolism , Cell Differentiation , Signal Transduction , Neurogenesis , Neural Stem Cells/metabolism
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