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Lavignolle-Heguy, R.

Publications and source records attributed to Lavignolle-Heguy, R..

2 recordsLinked to original sources

H3K4me3 exhibits length-dependent deposition patterns at transcription initiation regions in Trypanosoma cruzi and correlates with transcriptional activity

In trypanosmatids genes, transcribed by RNA polymerase II do not have canonical promoters and are organized into directional gene clusters that mature into monocistronic transcripts by a co-transcriptional process known as trans-splicing. Even though gene expression is regulated mainly post-transcriptionally, it is currently understood that chromatin and epigenetics are also involved in this regulation. In eukaryotes, specific signals are normally required for the occurrence of an appropriate transcription initiation. Among them, trimethylation of histone H3 in lysine 4 is the most conserved signal normally detected at transcription start sites of actively transcribed genes. Unlike many model organisms, trypanosomes do not have defined promoters. Instead, transcription initiates in a bidirectional manner from dispersed regions coincident with divergent strand switch regions located between directional gene clusters (DGCs). In T. cruzi, H3K4me3 was observed at the origins of transcription coincident with divergent strand switch regions (dSSRs) in epimastigotes, but it has not been mapped throughout the whole genome at base-pair resolution or in other life stages so far. Here, we set up the CUT&RUN technique for T. cruzi epimastigotes and trypomastigotes. Consistent with a predominant post-transcriptional regulation along the life cycle, we did not find significant differences between life stages. We corroborated that H3K4me3 is enriched at dSSR adjacent to actively expressed DGCs. Moreover, we noticed that this histone mark exhibits different patterns that correlate with the genomic span of the transcription initiation regions and with transcriptional activity. Furthermore, we unveiled that the most actively transcribed DGCs are associated with shorter dSSRs and are located within the core compartment of the genome displaying a more accessible chromatin.

genomics↗

Single-Nuclei Analysis of the Unfolded Protein Response (SNUPR): A Novel Method revealing bortezomib resistance mechanisms in Multiple Myeloma

AbstractThe unfolded protein response (UPR) is a key stress resistance pathway that has become a key potential target for improving the efficacy of cancer chemotherapy. The UPR involves the activation of three ER-resident stress sensors: PERK, IRE-1 and ATF6 with different signalling outcomes leading to cell death or survival. These cell-fate decisions are difficult to predict and are the result of the complex interaction of PERK, IRE-1 and ATF6 downstream events that have differences in their dynamics and their interplay. These characteristics of the UPR are still poorly defined due to lack of methods to monitor their activation simultaneously at single-cell level. We developed SNUPR (Single Nuclei analysis of the Unfolded Protein Response), an accessible technique that allows the profiling of the three UPR branches in nuclear suspensions by flow cytometry, and applied it to study UPR dynamics in a cancer-specific context. By performing transcriptomic analysis, we found that ER-stress sensor specific gene signatures correlate with patient survival in several blood malignancies, and by using SNUPR, we detected high heterogeneity during UPR activation in vitro in different human cancer cell lines, which could not be have been predicted by the level of expression of the sensors. Our SNUPR analyses further indicate that this heterogeneity is explained by variations in the intensity and duration of ER stress-induced protein synthesis inhibition via PERK, acting as upstream regulator of both the IRE-1/XBP1 and ATF6 dependent transcriptional programs. We extend the relevance of these observations by demonstrating that IRE-1/XBP1s pathway plays a critical role in bortezomib resistance of multiple myeloma cells and patients. We present here SNUPR, that can be used to monitor UPR dynamics with single-cell resolution and identified clinical contexts in which targeting a specific UPR branch could be detrimental or help circumventing chemotherapy resistance. One Sentence SummarySNUPR method enable single-cell UPR profiling and reveals the role of IRE-1 axis in predicting bortezomib resistance in multiple myeloma. HighlightsO_LISNUPR allows simultaneous profiling of PERK, IRE-1 and ATF6 activation with single- cell resolution. C_LIO_LIInhibition of protein synthesis via PERK control the activation levels of the IRE-1/XBP1s and ATF6 pathway. C_LIO_LIIRE-1 activation and associated transcriptional signatures predict the outcome of patients with multiple myeloma treated with Bortezomib. C_LIO_LIIRE-1 activity, but not PERK or ATF6, is essential to acquire bortezomib resistance in multiple myeloma cell lines. C_LI Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=190 HEIGHT=200 SRC="FIGDIR/small/617161v2_ufig1.gif" ALT="Figure 1"> View larger version (41K): org.highwire.dtl.DTLVardef@297668org.highwire.dtl.DTLVardef@1cab0eorg.highwire.dtl.DTLVardef@2238b4org.highwire.dtl.DTLVardef@b8ebf6_HPS_FORMAT_FIGEXP M_FIG C_FIG

cancer biology↗