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Vishwakarma, R. K.

Publications and source records attributed to Vishwakarma, R. K..

5 recordsLinked to original sources

Canonical transcription termination mechanisms explain a minority of operons in cyanobacteria

Cyanobacteria are the most abundant phototrophs and hold potential as a carbon-negative platform for bioengineering applications. However, these efforts have been hampered by limited mechanistic understanding of their gene expression, including transcription termination. Unlike most bacteria, cyanobacteria lack the transcription termination factor Rho, raising the speculation that all transcription ends with intrinsic terminators. Here we show that most transcription units (TUs) in Synechococcus elongatus PCC 7942 are not terminated by known termination pathways. Although many TUs (52%) have unique, well-defined 3' ends, only a small fraction have features that resemble canonical intrinsic terminators (22%). The noncanonical 3' ends broadly lacked strong secondary structure, making it unclear how these ends are protected against 3'-5' exonucleolytic decay. Furthermore, many TUs (46%) have diverse positions of mRNA 3' ends, suggesting a potentially diffuse termination signal. Finally, we observed a moderate increase in RNA levels downstream of most defined 3' ends in the absence of the transcription-repair coupling factor Mfd. This finding indicates that Mfd plays a limited, but widespread, role in RNA end formation, potentially through termination of stalled RNAPs. Together, our work reveals unique end architectures of the cyanobacterial transcriptome and suggests that undescribed transcription termination mechanisms are active in the phylum. ImportanceOur understanding of bacterial transcription regulation is largely based on model organisms like Escherichia coli and Bacillus subtilis, yet many of these mechanisms appear absent or divergent in cyanobacteria. These differences limit our fundamental understanding of gene regulation and the applied potential of cyanobacteria in sustainable biomanufacturing. To address this gap, we characterized transcription termination in the model cyanobacterium Synechococcus elongatus PCC 7942. We resolve a longstanding question by showing that intrinsic termination alone cannot account for most termination events in this organism. Pervasive transcript ends lacking intrinsic terminator features and the absence of Rho suggest the existence of novel termination mechanism(s) and highlight a largely unexplored regulatory landscape. Simultaneously, our work expands the repertoire of functionally characterized cyanobacterial intrinsic terminators, offering a new toolkit to fine-tune gene expression using terminators of defined strengths. These findings pave the way for more predictable and powerful applications of cyanobacteria in green biotechnology.

microbiology↗

Structural Characterization of Native RNA Polymerase II Transcription Complexes and Nucleosomes in Drosophila melanogaster

Structural studies of eukaryotic RNA polymerase II (Pol II) transcription complexes often depend on in vitro assembly by mixing purified Pol II with synthetic DNA/RNA scaffolds, recombinant transcription factors, and/or histones, followed by stalling transcription at defined positions by adding selected nucleotide triphosphate substrates. These studies have yielded remarkable results for understanding nucleosome transcription by Pol II with elongation factors but may fail to represent transcription in native conditions. To investigate Pol II transcription within metazoan cells, we developed an approach to isolate the native transcription complexes from Drosophila melanogaster embryos. Utilizing one-step FLAG-tag affinity purification and mild chromatin treatment with Micrococcal Nuclease (MNase), we preserved the native transcription complex for cryo-EM and proteomics studies. In silico purification through the cryo-EM classifications determined structures of multiple forms of native transcription complex, nucleosome and other macromolecules. Remarkably, we determined the structures of metazoan Rpb4/Rpb7 stalk-less elongation complex as well as hexameric nucleosome lacking an H2A/H2B dimer, revealing that diverse elongation complexes and nucleosomes are involved in active transcription in vivo. Nucleosome is positioned only downstream of Pol II in the nucleosome elongation complex, underscoring it as a major energy barrier and a time-consuming step during Pol II progression through nucleosomal DNA. Proteomics identified co-purified factors responsible for initiation and elongation stages of transcription, as well as RNA modification factors. This study lays the groundwork for structural study of native transcription in eukaryotes, with future work focused on studies of transient and minor populations of transcription complexes.

molecular biology↗

Single-stranded DNA drives sigma subunit loading onto RNA polymerase to unlock initiation-competent conformations

Initiation of transcription requires the formation of the "open" promoter complex (RPo). For this, the {sigma} subunit of bacterial RNA polymerase (RNAP) binds to the non-template strand of the -10 element sequence of promoters and nucleates DNA unwinding. This is accompanied by a cascade of conformational changes on RNAP the mechanics of which remains elusive. Here, using single-molecule Forster resonance energy transfer and cryo-electron microscopy, we explored the conformational landscape of RNAP from the human pathogen Mycobacterium tuberculosis upon binding to a single-stranded DNA fragment that includes the -10 element sequence (-10 ssDNA). We found that like the transcription activator RbpA, -10 ssDNA induced {sigma} subunit loading onto the DNA/RNA channels of RNAP. This triggered RNAP clamp closure and unswiveling that are required for RPo formation and RNA synthesis initiation. Our results reveal a mechanism of ssDNA-guided RNAP maturation and identify the {sigma} subunit as a regulator of RNAP conformational dynamics

molecular biology↗

Structure and function of the Si3 insertion integrated into the trigger loop/helix of cyanobacterial RNA polymerase

Cyanobacteria and evolutionarily related chloroplasts of algae and plants possess unique RNA polymerases (RNAPs) with characteristics that distinguish from canonical bacterial RNAPs. The largest subunit of cyanobacterial RNAP (cyRNAP) is divided into two polypeptides, {beta}1 and {beta}2, and contains the largest known lineage-specific insertion domain, Si3, located in the middle of the trigger loop and spans approximately half of the {beta}2 subunit. In this study, we present the X-ray crystal structure of Si3 and the cryo-EM structures of the cyRNAP transcription elongation complex plus the NusG factor with and without incoming nucleoside triphosphate (iNTP) bound at the active site. Si3 has a well-ordered and elongated shape that exceeds the length of the main body of cyRNAP, fits into cavities of cyRNAP and shields the binding site of secondary channel-binding proteins such as Gre and DksA. A small transition from the trigger loop to the trigger helix upon iNTP binding at the active site results in a large swing motion of Si3; however, this transition does not affect the catalytic activity of cyRNAP due to its minimal contact with cyRNAP, NusG or DNA. This study provides a structural framework for understanding the evolutionary significance of these features unique to cyRNAP and chloroplast RNAP and may provide insights into the molecular mechanism of transcription in specific environment of photosynthetic organisms. Significance statementCellular RNA polymerase (RNAP) carries out RNA synthesis and proofreading reactions utilizing a mobile catalytic domain known as the trigger loop/helix. In cyanobacteria, this essential domain acquired a large Si3 insertion during the course of evolution. Despite its elongated shape and large swinging motion associated with the transition between the trigger loop and helix, Si3 is effectively accommodated within cyRNAP, with no impact on the fundamental functions of the trigger loop. Understanding the significance of Si3 in cyanobacteria and chloroplasts is expected to reveal unique transcription mechanism in photosynthetic organisms.

biochemistry↗

Allosteric mechanism of transcription inhibition by NusG-dependent pausing of RNA polymerase

NusG is a transcription elongation factor that stimulates transcription pausing in Gram+ bacteriaincluding Bacillus subtilis by sequence-specific interaction with a conserved pause-inducing -11TTNTTT-6 motif found in the non-template DNA (ntDNA) strand within the transcription bubble. To reveal the structural basis of NusG-dependent pausing, we determined a cryo-EM structure of a paused transcription complex containing RNAP, NusG, and the TTNTTT motif in the ntDNA strand. Interaction of NusG with the ntDNA strand rearranges the transcription bubble by positioning three consecutive T residues in a cleft between NusG and the {beta}-lobe domain of RNAP. We revealed that the RNAP swivel module rotation (swiveling), which widens (swiveled state) and narrows (non-swiveled state) a cleft between NusG and the {beta}-lobe, is an intrinsic motion of RNAP and is directly linked to nucleotide binding at the active site and to trigger loop folding, an essential conformational change of all cellular RNAPs for the RNA synthesis reaction. We also determined cryo-EM structures of RNAP escaping from a paused transcription complex. These structures revealed the NusG-dependent pausing mechanism by which NusG-ntDNA interaction inhibits the transition from swiveled to non-swiveled states, thereby preventing trigger loop folding and RNA synthesis allosterically. This motion is also reduced by formation of an RNA hairpin within the RNA exit channel. Thus, the pause half-life can be modulated by the strength of the NusG-ntDNA interaction and/or the stability of the RNA hairpin. NusG residues that interact with the TTNTTT motif are widely conserved in bacteria, suggesting that NusG-dependent pausing of transcription is widespread. Significance statementTranscription pausing by RNA polymerase (RNAP) regulates gene expression where it controls co-transcriptional RNA folding, synchronizes transcription with translation, and provides time for binding of regulatory factors. Transcription elongation factor NusG stimulates pausing in Gram+ bacteriaincluding Bacillus subtilis and Mycobacterium tuberculosis by sequence-specific interaction with a conserved pause motif found in the non-template DNA (ntDNA) strand within the transcription bubble. Our structural and biochemical results revealed that part of the conserved TTNTTT motif in ntDNA is extruded and sandwiched between NusG and RNAP. Our results further demonstrate that an essential global conformational change in RNAP is directly linked to RNA synthesis, and that the NusG-ntDNA interaction pauses RNA synthesis by interfering with this conformational change.

molecular biology↗