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Biology subjects

Cingaram, P. R.

Publications and source records attributed to Cingaram, P. R..

2 recordsLinked to original sources

Bypass of Blocking Lesions by RNAPII Impairs the Transcriptional DNA Damage Response

Ultraviolet (UV) irradiation and platinum-based drugs generate bulky DNA lesions that impede transcription elongation by RNA Polymerase II (RNAPII). This transcriptional block triggers a coordinated stress response involving transcription-coupled nucleotide excision repair (TC-NER), removal and degradation of the stalled RNAPII, and global transcriptional shutdown. However, the molecular and cellular consequences of RNAPII bypassing such lesions remain unclear. Here, we identify the acetyltransferase p300 as a key regulator of this transcriptional stress response. p300 interacts with stalled RNAPII and promotes its removal and degradation through a USP7-dependent mechanism. Remarkably, in p300-deficient cells, RNAPII bypasses DNA lesions, allowing transcription to persist despite DNA damage and leading to the production of full-length mRNAs. This sustained transcriptional activity without DNA lesion repair results in increased genome instability and reduced cellular proliferation capacity. These findings reveal the biological consequences of transcribing through transcription-blocking lesions.

molecular biology↗

Enhancing Transcriptome Mapping with Rapid PRO-seq Profiling of Nascent RNA

Precision nuclear run-on (PRO) sequencing (PRO-seq) is a powerful technique for mapping polymerase active sites with nucleotide resolution and measuring newly synthesized transcripts at both promoters and enhancer elements. The current PRO-seq protocol is time-intensive, technically challenging, and requires a large amount of starting material. To overcome these limitations, we developed rapid PRO-seq (rPRO-seq) which utilizes pre-adenylated single-stranded DNAs (AppDNA), a dimer blocking oligonucleotide (DBO), on-bead 5 RNA end repair, and column-based purification. These modifications enabled efficient transcriptome mapping within a single day ([~]12 hours) increasing ligation efficiency, abolished adapter dimers, and reduced sample loss and RNA degradation. We demonstrate the reproducibility of rPRO-seq in measuring polymerases at promoters, gene bodies, and enhancers as compared to original PRO-seq protocols. Additionally, rPRO-seq is scalable, allowing for transcriptome mapping with as little as 25,000 cells. We apply rPRO-seq to study the role of Integrator in mouse hematopoietic stem and progenitor cell (mHSPC) homeostasis, identifying Ints11 as an essential component of transcriptional regulation and RNA processing in mHSPC homeostasis. Overall, rPRO-seq represents a significant advance in the field of nascent transcript analyses and will be a valuable tool for generating patient-specific genome-wide transcription profiles with minimal sample requirements.

molecular biology↗