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Biology subjects

Khudaverdyan, N.

Publications and source records attributed to Khudaverdyan, N..

3 recordsLinked to original sources

Epigenetic priming promotes acquisition of tyrosine kinase inhibitor resistance and oncogene amplification in human lung cancer

In mammalian cells, gene copy number is tightly controlled to maintain gene expression and genome stability. However, a common molecular feature across cancer types is oncogene amplification, which promotes cancer progression by drastically increasing the copy number and expression of tumor-promoting genes. For example, in tyrosine kinase inhibitor (TKI)-resistant lung adenocarcinoma (LUAD), oncogene amplification occurs in over 40% of patients tumors. Despite the prevalence of oncogene amplification in TKI-resistant tumors, the mechanisms facilitating oncogene amplification are not fully understood. Here, we find that LUADs exhibit a unique chromatin signature demarcated by strong CTCF and cohesin deposition in drug-naive tumors, which correlates with the boundaries of oncogene amplicons in TKI-resistant LUAD cells. We identified a global chromatin priming effect during the acquisition of TKI resistance, marked by a dynamic increase of H3K27Ac, cohesin loading, and inter-TAD interactions, which occurs before the onset of oncogene amplification. Furthermore, we have found that the METTL7A protein, which was previously reported to localize to the endoplasmic reticulum and inner nuclear membrane, has a novel chromatin regulatory function by binding to amplified loci and regulating cohesin recruitment and inter-TAD interactions. Surprisingly, we discovered that METTL7A remodels the chromatin landscape prior to large-scale copy number gains. Furthermore, while METTL7A depletion has little effect on the chromatin structure and proliferation of drug-naive cells, METTL7A depletion prevents the formation and maintenance of TKI resistant-clones, highlighting the specific role of METTL7A as cells are becoming resistant. In summary, we discovered an unexpected mechanism required for the acquisition of TKI resistance regulated by a largely uncharacterized factor, METTL7A. This discovery sheds light into the maintenance of oncogene copy number and paves the way to the development of new therapeutics for preventing TKI resistance in LUAD.

genetics↗

Structural basis for the allosteric regulation and dynamic assembly of DNMT3B

Oligomerization of DNMT3B, a mammalian de novo DNA methyltransferase, critically regulates its chromatin targeting and DNA methylation activities. However, how the N-terminal PWWP and ADD domains interplay with the C-terminal methyltransferase (MTase) domain in regulating the dynamic assembly of DNMT3B remains unclear. Here, we report the cryo-EM structure of DNMT3B under various oligomerization states. The ADD domain of DNMT3B interacts with the MTase domain to form an autoinhibitory conformation, resembling the previously observed DNMT3A autoinhibition. Our combined structural and biochemical study further identifies a role for the PWWP domain and its associated ICF mutation in the allosteric regulation of DNMT3B tetramer, and a differential functional impact on DNMT3B by potential ADD-H3K4me0 and PWWP-H3K36me3 bindings. In addition, our comparative structural analysis reveals a coupling between DNMT3B oligomerization and folding of its substrate-binding sites. Together, this study provides mechanistic insights into the allosteric regulation and dynamic assembly of DNMT3B.

biochemistry↗

TPR domain assigns versatility of BcTir/Tpr system against viral infection

NAD+-derived signal produced by TIR domain triggered the host immune responses. The ubiquitous TPR domain involved in signal recognition and effector activation were found widely assembled with the TIR domain. However, the immune roles of these assemblies remain elusive. Here, a two-gene operon, one containing a TIR domain, designated as BcTir, and the other, BcTpr, from Bacillus cereus, exhibited anti-phage immunity. BcTpr, but not BcTir, exhibited NADase activity to produce the cyclic ADPR (cADPR) isomer and mediate NAD+ depletion. Noticeably, the truncated N terminus of BcTpr only depleted NAD+ unless at the presence of TPR domain to generate cADPR isomer unveiling its role played for glycosite selection. In addition, the BcTir/Tpr system significantly repressed viral proliferation and increased oxidation resistance by scavenging excessive reactive oxygen species (ROS) upon phage infection. These findings unraveled a multifunctional role of the BcTir/Tpr system during immune responses. In BriefThe bacterial BcTir/Tpr system was identified with the ability to protect against phage infection via NAD+ depletion, viral replication repression, and ROS homeostasis, in which BcTpr played a dual role in NAD+-derived signal production and NAD+ depletion. HighlightsO_LIThe BcTir/Tpr system works as a BcTir-BcTpr complex against phage infection. C_LIO_LIBcTpr, instead of BcTir, generates the NAD+-derived cADPR isomer through its glycosidase domain at N terminus. C_LIO_LIThe amount of cADPR isomer production is regulated by the helix numbers of the TPR domain at C terminus of BcTpr. C_LIO_LIThe BcTir/Tpr system can depress phage proliferation and decrease ROS production upon phage infection. C_LI

microbiology↗