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1.
Nat Commun ; 15(1): 8603, 2024 Oct 04.
Artículo en Inglés | MEDLINE | ID: mdl-39366934

RESUMEN

Metastatic urothelial carcinoma (mUC) is a lethal cancer, with limited therapeutic options. Large-scale studies in early settings provided critical insights into the genomic and transcriptomic characteristics of non-metastatic UC. The genomic landscape of mUC remains however unclear. Using Whole Exome (WES) and mRNA sequencing (RNA-seq) performed on metastatic biopsies from 111 patients, we show that driver genomic alterations from mUC were comparable to primary UC (TCGA data). APOBEC, platin, and HRD mutational signatures are the most prevalent in mUC, identified in 56%, 14%, and 9% of mUC samples, respectively. Molecular subtyping using consensus transcriptomic classification in mUC shows enrichment in neuroendocrine subtype. Paired samples analysis reveals subtype heterogeneity and temporal evolution. We identify potential therapeutic targets in 73% of mUC patients, of which FGFR3 (26%), ERBB2 (7%), TSC1 (7%), and PIK3CA (13%) are the most common. NECTIN4 and TACSTD2 are highly expressed regardless of molecular subtypes, FGFR3 alterations and sites of metastases.


Asunto(s)
Secuenciación del Exoma , Mutación , Receptor Tipo 3 de Factor de Crecimiento de Fibroblastos , Transcriptoma , Humanos , Receptor Tipo 3 de Factor de Crecimiento de Fibroblastos/genética , Receptor Tipo 3 de Factor de Crecimiento de Fibroblastos/metabolismo , Masculino , Femenino , Receptor ErbB-2/genética , Receptor ErbB-2/metabolismo , Neoplasias de la Vejiga Urinaria/genética , Neoplasias de la Vejiga Urinaria/patología , Nectinas/genética , Nectinas/metabolismo , Anciano , Proteína 1 del Complejo de la Esclerosis Tuberosa/genética , Proteína 1 del Complejo de la Esclerosis Tuberosa/metabolismo , Moléculas de Adhesión Celular/genética , Moléculas de Adhesión Celular/metabolismo , Antígenos de Neoplasias/genética , Antígenos de Neoplasias/metabolismo , Fosfatidilinositol 3-Quinasa Clase I/genética , Fosfatidilinositol 3-Quinasa Clase I/metabolismo , Genómica , Persona de Mediana Edad , Desaminasas APOBEC/genética , Desaminasas APOBEC/metabolismo , Urotelio/patología , Urotelio/metabolismo , Regulación Neoplásica de la Expresión Génica , Citidina Desaminasa/genética , Citidina Desaminasa/metabolismo , Metástasis de la Neoplasia/genética , Anciano de 80 o más Años , Carcinoma de Células Transicionales/genética , Carcinoma de Células Transicionales/patología , Neoplasias Urológicas/genética , Neoplasias Urológicas/patología , Perfilación de la Expresión Génica/métodos
2.
Methods Enzymol ; 705: 311-345, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-39389668

RESUMEN

In recent years, the connection between APOBEC3 cytosine deaminases and cancer mutagenesis has become ever more apparent. This growing awareness and lack of inhibitory drugs has created a distinct need for biochemical tools that can be used to identify and characterize potential inhibitors of this family of enzymes. In response to this challenge, we have developed a Real-time APOBEC3-mediated DNA Deamination (RADD) assay. The RADD assay provides a rapid, real-time fluorescence readout of APOBEC3 DNA deamination and serves as a crucial addition to the existing APOBEC3 biochemical and cellular toolkit. This method improves upon contemporary DNA deamination assays by offering a more rapid and quantifiable readout as well as providing a platform that is readily adaptable to a high-throughput format for inhibitor discovery. In this chapter we provide a detailed guide for the usage of the RADD assay for the characterization of APOBEC3 enzymes and potential inhibitors.


Asunto(s)
ADN , Transferencia Resonante de Energía de Fluorescencia , Humanos , Transferencia Resonante de Energía de Fluorescencia/métodos , ADN/metabolismo , Desaminación , Citidina Desaminasa/metabolismo , Citidina Desaminasa/genética , Pruebas de Enzimas/métodos , Inhibidores Enzimáticos/farmacología , Desaminasas APOBEC/metabolismo
3.
PLoS Pathog ; 20(8): e1012505, 2024 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-39208378

RESUMEN

Replication of the complex retrovirus mouse mammary tumor virus (MMTV) is antagonized by murine Apobec3 (mA3), a member of the Apobec family of cytidine deaminases. We have shown that MMTV-encoded Rem protein inhibits proviral mutagenesis by the Apobec enzyme, activation-induced cytidine deaminase (AID) during viral replication in BALB/c mice. To further study the role of Rem in vivo, we have infected C57BL/6 (B6) mice with a superantigen-independent lymphomagenic strain of MMTV (TBLV-WT) or a mutant strain that is defective in Rem and its cleavage product Rem-CT (TBLV-SD). Compared to BALB/c, B6 mice were more susceptible to TBLV infection and tumorigenesis. Furthermore, unlike MMTV, TBLV induced T-cell tumors in B6 µMT mice, which lack membrane-bound IgM and conventional B-2 cells. At limiting viral doses, loss of Rem expression in TBLV-SD-infected B6 mice accelerated tumorigenesis compared to TBLV-WT in either wild-type B6 or AID-knockout mice. Unlike BALB/c results, high-throughput sequencing indicated that proviral G-to-A or C-to-T mutations were unchanged regardless of Rem expression in B6 tumors. However, knockout of both AID and mA3 reduced G-to-A mutations. Ex vivo stimulation showed higher levels of mA3 relative to AID in B6 compared to BALB/c splenocytes, and effects of agonists differed in the two strains. RNA-Seq revealed increased transcripts related to growth factor and cytokine signaling in TBLV-SD-induced tumors relative to TBLV-WT-induced tumors, consistent with another Rem function. Thus, Rem-mediated effects on tumorigenesis in B6 mice are independent of Apobec-mediated proviral hypermutation.


Asunto(s)
Citidina Desaminasa , Virus del Tumor Mamario del Ratón , Infecciones por Retroviridae , Animales , Femenino , Ratones , Desaminasas APOBEC/genética , Desaminasas APOBEC/metabolismo , Carcinogénesis/genética , Citidina Desaminasa/genética , Citidina Desaminasa/metabolismo , Virus del Tumor Mamario del Ratón/genética , Ratones Endogámicos BALB C , Ratones Endogámicos C57BL , Ratones Noqueados , Mutación , Infecciones por Retroviridae/inmunología , Infecciones por Retroviridae/virología , Infecciones por Retroviridae/genética , Infecciones Tumorales por Virus/genética , Infecciones Tumorales por Virus/virología , Infecciones Tumorales por Virus/inmunología , Replicación Viral
4.
G3 (Bethesda) ; 14(10)2024 Oct 07.
Artículo en Inglés | MEDLINE | ID: mdl-39150943

RESUMEN

Human APOBEC single-strand (ss) specific DNA and RNA cytidine deaminases change cytosines to uracils (U's) and function in antiviral innate immunity and RNA editing and can cause hypermutation in chromosomes. The resulting U's can be directly replicated, resulting in C to T mutations, or U-DNA glycosylase can convert the U's to abasic (AP) sites which are then fixed as C to T or C to G mutations by translesion DNA polymerases. We noticed that in yeast and in human cancers, contributions of C to T and C to G mutations depend on the origin of ssDNA mutagenized by APOBECs. Since ssDNA in eukaryotic genomes readily binds to replication protein A (RPA) we asked if RPA could affect APOBEC-induced mutation spectrum in yeast. For that purpose, we expressed human APOBECs in the wild-type (WT) yeast and in strains carrying a hypomorph mutation rfa1-t33 in the large RPA subunit. We confirmed that the rfa1-t33 allele can facilitate mutagenesis by APOBECs. We also found that the rfa1-t33 mutation changed the ratio of APOBEC3A-induced T to C and T to G mutations in replicating yeast to resemble a ratio observed in long persistent ssDNA in yeast and in cancers. We present the data suggesting that RPA may shield APOBEC formed U's in ssDNA from Ung1, thereby facilitating C to T mutagenesis through the accurate copying of U's by replicative DNA polymerases. Unexpectedly, we also found that for U's shielded from Ung1 by WT RPA, the mutagenic outcome is reduced in the presence of translesion DNA polymerase zeta.


Asunto(s)
Mutagénesis , Mutación , Proteína de Replicación A , Saccharomyces cerevisiae , Proteína de Replicación A/metabolismo , Proteína de Replicación A/genética , Humanos , Saccharomyces cerevisiae/genética , Desaminasas APOBEC/metabolismo , Desaminasas APOBEC/genética , Citidina Desaminasa/metabolismo , Citidina Desaminasa/genética , ADN de Cadena Simple/metabolismo , Desaminasas APOBEC-1/genética , Desaminasas APOBEC-1/metabolismo , Subunidades de Proteína/metabolismo , Subunidades de Proteína/genética
5.
Viruses ; 16(7)2024 Jul 16.
Artículo en Inglés | MEDLINE | ID: mdl-39066304

RESUMEN

Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) has acquired multiple mutations since its emergence. Analyses of the SARS-CoV-2 genomes from infected patients exhibit a bias toward C-to-U mutations, which are suggested to be caused by the apolipoprotein B mRNA editing enzyme polypeptide-like 3 (APOBEC3, A3) cytosine deaminase proteins. However, the role of A3 enzymes in SARS-CoV-2 replication remains unclear. To address this question, we investigated the effect of A3 family proteins on SARS-CoV-2 replication in the myeloid leukemia cell line THP-1 lacking A3A to A3G genes. The Wuhan, BA.1, and BA.5 variants had comparable viral replication in parent and A3A-to-A3G-null THP-1 cells stably expressing angiotensin-converting enzyme 2 (ACE2) protein. On the other hand, the replication and infectivity of these variants were abolished in A3A-to-A3G-null THP-1-ACE2 cells in a series of passage experiments over 20 days. In contrast to previous reports, we observed no evidence of A3-induced SARS-CoV-2 mutagenesis in the passage experiments. Furthermore, our analysis of a large number of publicly available SARS-CoV-2 genomes did not reveal conclusive evidence for A3-induced mutagenesis. Our studies suggest that A3 family proteins can positively contribute to SARS-CoV-2 replication; however, this effect is deaminase-independent.


Asunto(s)
Desaminasas APOBEC , COVID-19 , Citidina Desaminasa , SARS-CoV-2 , Replicación Viral , Humanos , SARS-CoV-2/genética , SARS-CoV-2/fisiología , SARS-CoV-2/metabolismo , Desaminasas APOBEC/metabolismo , Desaminasas APOBEC/genética , COVID-19/virología , COVID-19/metabolismo , Citidina Desaminasa/metabolismo , Citidina Desaminasa/genética , Células THP-1 , Mutación , Enzima Convertidora de Angiotensina 2/metabolismo , Enzima Convertidora de Angiotensina 2/genética , Genoma Viral
6.
Sci Rep ; 14(1): 15395, 2024 07 04.
Artículo en Inglés | MEDLINE | ID: mdl-38965255

RESUMEN

The APOBEC/AID family is known for its mutator activity, and recent evidence also supports the potential impact of ADARs. Furthermore, the mutator impacts of APOBEC/ADAR mutations have not yet been investigated. Assessment of pancancer TCGA exomes identified enriched somatic variants among exomes with nonsynonymous APOBEC1, APOBEC3B, APOBEC3C, ADAR, and ADARB1 mutations, compared to exomes with synonymous ones. Principal component (PC) analysis reduced the number of potential players to eight in cancer exomes/genomes, and to five in cancer types. Multivariate regression analysis was used to assess the impact of the PCs on each COSMIC mutational signature among pancancer exomes/genomes and particular cancers, identifying several novel links, including SBS17b, SBS18, and ID7 mainly determined by APOBEC1 mRNA levels; SBS40, ID1, and ID2 by age; SBS3 and SBS16 by APOBEC3A/APOBEC3B mRNA levels; ID5 and DBS9 by DNA repair/replication (DRR) defects; and SBS7a-d, SBS38, ID4, ID8, ID13, and DBS1 by ultraviolet (UV) radiation/ADARB1 mRNA levels. APOBEC/ADAR mutations appeared to potentiate the impact of DRR defects on several mutational signatures, and some factors seemed to inversely affect certain signatures. These findings potentially implicate certain APOBEC/ADAR mutations/mRNA levels in distinct mutational signatures, particularly APOBEC1 mRNA levels in aging-related signatures and ADARB1 mRNA levels in UV radiation-related signatures.


Asunto(s)
Adenosina Desaminasa , Envejecimiento , Mutación , ARN Mensajero , Proteínas de Unión al ARN , Rayos Ultravioleta , Humanos , Rayos Ultravioleta/efectos adversos , ARN Mensajero/genética , ARN Mensajero/metabolismo , Envejecimiento/genética , Adenosina Desaminasa/genética , Adenosina Desaminasa/metabolismo , Proteínas de Unión al ARN/genética , Proteínas de Unión al ARN/metabolismo , Desaminasas APOBEC-1/genética , Desaminasas APOBEC-1/metabolismo , Desaminasas APOBEC/genética , Desaminasas APOBEC/metabolismo , Citidina Desaminasa/genética , Citidina Desaminasa/metabolismo , Neoplasias/genética , Exoma
7.
Nat Commun ; 15(1): 6039, 2024 Jul 18.
Artículo en Inglés | MEDLINE | ID: mdl-39019871

RESUMEN

During each cell cycle, the process of DNA replication timing is tightly regulated to ensure the accurate duplication of the genome. The extent and significance of alterations in this process during malignant transformation have not been extensively explored. Here, we assess the impact of altered replication timing (ART) on cancer evolution by analysing replication-timing sequencing of cancer and normal cell lines and 952 whole-genome sequenced lung and breast tumours. We find that 6%-18% of the cancer genome exhibits ART, with regions with a change from early to late replication displaying an increased mutation rate and distinct mutational signatures. Whereas regions changing from late to early replication contain genes with increased expression and present a preponderance of APOBEC3-mediated mutation clusters and associated driver mutations. We demonstrate that ART occurs relatively early during cancer evolution and that ART may have a stronger correlation with mutation acquisition than alterations in chromatin structure.


Asunto(s)
Neoplasias de la Mama , Momento de Replicación del ADN , Neoplasias Pulmonares , Mutación , Humanos , Neoplasias Pulmonares/genética , Neoplasias Pulmonares/patología , Neoplasias de la Mama/genética , Neoplasias de la Mama/patología , Femenino , Línea Celular Tumoral , Desaminasas APOBEC/genética , Desaminasas APOBEC/metabolismo , Tasa de Mutación , Replicación del ADN/genética , Genoma Humano
8.
Nature ; 630(8017): 752-761, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38867045

RESUMEN

Mutations accumulate in the genome of every cell of the body throughout life, causing cancer and other diseases1,2. Most mutations begin as nucleotide mismatches or damage in one of the two strands of the DNA before becoming double-strand mutations if unrepaired or misrepaired3,4. However, current DNA-sequencing technologies cannot accurately resolve these initial single-strand events. Here we develop a single-molecule, long-read sequencing method (Hairpin Duplex Enhanced Fidelity sequencing (HiDEF-seq)) that achieves single-molecule fidelity for base substitutions when present in either one or both DNA strands. HiDEF-seq also detects cytosine deamination-a common type of DNA damage-with single-molecule fidelity. We profiled 134 samples from diverse tissues, including from individuals with cancer predisposition syndromes, and derive from them single-strand mismatch and damage signatures. We find correspondences between these single-strand signatures and known double-strand mutational signatures, which resolves the identity of the initiating lesions. Tumours deficient in both mismatch repair and replicative polymerase proofreading show distinct single-strand mismatch patterns compared to samples that are deficient in only polymerase proofreading. We also define a single-strand damage signature for APOBEC3A. In the mitochondrial genome, our findings support a mutagenic mechanism occurring primarily during replication. As double-strand DNA mutations are only the end point of the mutation process, our approach to detect the initiating single-strand events at single-molecule resolution will enable studies of how mutations arise in a variety of contexts, especially in cancer and ageing.


Asunto(s)
Disparidad de Par Base , Daño del ADN , ADN de Cadena Simple , Análisis de Secuencia de ADN , Imagen Individual de Molécula , Humanos , Envejecimiento/genética , Desaminasas APOBEC/genética , Desaminasas APOBEC/metabolismo , Disparidad de Par Base/genética , Citidina Desaminasa/metabolismo , Citidina Desaminasa/genética , Citosina/metabolismo , Desaminación , Daño del ADN/genética , Reparación de la Incompatibilidad de ADN/genética , Replicación del ADN/genética , ADN de Cadena Simple/genética , Genoma Mitocondrial/genética , Mutación , Neoplasias/genética , Análisis de Secuencia de ADN/métodos , Análisis de Secuencia de ADN/normas , Imagen Individual de Molécula/métodos , Masculino , Femenino
9.
J Biol Chem ; 300(6): 107410, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38796062

RESUMEN

Over the past decade, the connection between APOBEC3 cytosine deaminases and cancer mutagenesis has become increasingly apparent. This growing awareness has created a need for biochemical tools that can be used to identify and characterize potential inhibitors of this enzyme family. In response to this challenge, we have developed a Real-time APOBEC3-mediated DNA Deamination assay. This assay offers a single-step set-up and real-time fluorescent read-out, and it is capable of providing insights into enzyme kinetics. The assay also offers a high-sensitivity and easily scalable method for identifying APOBEC3 inhibitors. This assay serves as a crucial addition to the existing APOBEC3 biochemical and cellular toolkit and possesses the versatility to be readily adapted into a high-throughput format for inhibitor discovery.


Asunto(s)
Citidina Desaminasa , ADN , Humanos , Desaminación , Citidina Desaminasa/metabolismo , ADN/metabolismo , ADN/química , Cinética , Desaminasas APOBEC/metabolismo , Inhibidores Enzimáticos/farmacología
11.
Mol Cell Proteomics ; 23(5): 100755, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38548018

RESUMEN

Human APOBEC3 enzymes are a family of single-stranded (ss)DNA and RNA cytidine deaminases that act as part of the intrinsic immunity against viruses and retroelements. These enzymes deaminate cytosine to form uracil which can functionally inactivate or cause degradation of viral or retroelement genomes. In addition, APOBEC3s have deamination-independent antiviral activity through protein and nucleic acid interactions. If expression levels are misregulated, some APOBEC3 enzymes can access the human genome leading to deamination and mutagenesis, contributing to cancer initiation and evolution. While APOBEC3 enzymes are known to interact with large ribonucleoprotein complexes, the function and RNA dependence are not entirely understood. To further understand their cellular roles, we determined by affinity purification mass spectrometry (AP-MS) the protein interaction network for the human APOBEC3 enzymes and mapped a diverse set of protein-protein and protein-RNA mediated interactions. Our analysis identified novel RNA-mediated interactions between APOBEC3C, APOBEC3H Haplotype I and II, and APOBEC3G with spliceosome proteins, and APOBEC3G and APOBEC3H Haplotype I with proteins involved in tRNA methylation and ncRNA export from the nucleus. In addition, we identified RNA-independent protein-protein interactions with APOBEC3B, APOBEC3D, and APOBEC3F and the prefoldin family of protein-folding chaperones. Interaction between prefoldin 5 (PFD5) and APOBEC3B disrupted the ability of PFD5 to induce degradation of the oncogene cMyc, implicating the APOBEC3B protein interaction network in cancer. Altogether, the results uncover novel functions and interactions of the APOBEC3 family and suggest they may have fundamental roles in cellular RNA biology, their protein-protein interactions are not redundant, and there are protein-protein interactions with tumor suppressors, suggesting a role in cancer biology. Data are available via ProteomeXchange with the identifier PXD044275.


Asunto(s)
Citidina Desaminasa , Mapas de Interacción de Proteínas , Humanos , Citidina Desaminasa/metabolismo , Citidina Desaminasa/genética , Desaminación , Desaminasas APOBEC/metabolismo , Aminohidrolasas/metabolismo , Aminohidrolasas/genética , Células HEK293 , Citosina Desaminasa/metabolismo , Desaminasa APOBEC-3G/metabolismo , Desaminasa APOBEC-3G/genética , Empalmosomas/metabolismo , Unión Proteica , Espectrometría de Masas , ARN/metabolismo , Antígenos de Histocompatibilidad Menor/metabolismo , Antígenos de Histocompatibilidad Menor/genética
12.
BMC Cancer ; 24(1): 15, 2024 Jan 02.
Artículo en Inglés | MEDLINE | ID: mdl-38166744

RESUMEN

BACKGROUND: Apolipoprotein B mRNA editing enzyme catalytic polypeptide-like 2 (APOBEC2) is associated with nucleotide alterations in the transcripts of tumor-related genes which are contributed to carcinogenesis. Expression and prognosis value of APOBEC2 in stomach adenocarcinoma (STAD) remains unclear. METHODS: The APOBEC2 gene alteration frequency of STAD and APOBEC2 gene expression in STAD and normal tissues were investigated in cBioportal and GEPIA, respectively. We detected expression of APOBEC2, infiltration of CD66b+ tumor-associated neutrophils and CD163+ tumor-associated macrophages in tissue microarrays by immunohistochemistry. APOBEC2 gene expression was explored by western blot and qRT-PCR. Relationships between APOBEC2 and CD66b, CD163, and other clinicopathological characteristics were investigated. Associations among APOBEC2 expression status and patient survival outcome were further analyzed. RESULTS: APOBEC2 gene alteration frequency was 5%, and APOBEC2 gene was downexpressed in STAD compared to normal tissues (P < 0.05). APOBEC2 expression status were associated with the infiltration of CD66b+ TANs, differentiation grade, TNM stage, histological type and gender (all P < 0.05) in STAD. Little or no APOBEC2 expression was detected in STAD and adjacent normal tissues by western blot. We failed to show that APOBEC2 was an independent risk factor for OS (Hazard Ratio 0.816, 95%CI 0.574-1.161, P = 0.259) or DFS (Hazard Ratio 0.821, 95%CI 0.578-1.166, P = 0.270) in STAD by multivariate Cox regression analysis, but APOBEC2 negative subgroup has a worse OS and DFS among patients with adjuvant chemotherapy. CONCLUSIONS: APOBEC2 correlates with CD66b, differentiation grade, TNM stages, histological classification, and gender in STAD. APOBEC2 is not an independent prognostic factor for STAD, our results suggest that patients with positive APOBEC2 can benefit from postoperative chemotherapy, and combination of APOBEC2 and CD66b is helpful to further stratify patients into different groups with distinct prognoses.


Asunto(s)
Desaminasas APOBEC , Adenocarcinoma , Neoplasias Gástricas , Humanos , Adenocarcinoma/patología , Desaminasas APOBEC/metabolismo , Proteínas Musculares , Neutrófilos/patología , Nucleótidos/metabolismo , Pronóstico , Modelos de Riesgos Proporcionales , Neoplasias Gástricas/metabolismo
13.
Sci Adv ; 9(44): eadh3083, 2023 11 03.
Artículo en Inglés | MEDLINE | ID: mdl-37922356

RESUMEN

Mutational signatures represent a genomic footprint of endogenous and exogenous mutational processes through tumor evolution. However, their functional impact on the proteome remains incompletely understood. We analyzed the protein-coding impact of single-base substitution (SBS) signatures in 12,341 cancer genomes from 18 cancer types. Stop-gain mutations (SGMs) (i.e., nonsense mutations) were strongly enriched in SBS signatures of tobacco smoking, APOBEC cytidine deaminases, and reactive oxygen species. These mutational processes alter specific trinucleotide contexts and thereby substitute serines and glutamic acids with stop codons. SGMs frequently affect cancer hallmark pathways and tumor suppressors such as TP53, FAT1, and APC. Tobacco-driven SGMs in lung cancer correlate with smoking history and highlight a preventable determinant of these harmful mutations. APOBEC-driven SGMs are enriched in YTCA motifs and associate with APOBEC3A expression. Our study exposes SGM expansion as a genetic mechanism by which endogenous and carcinogenic mutational processes directly contribute to protein loss of function, oncogenesis, and tumor heterogeneity.


Asunto(s)
Neoplasias , Humanos , Mutación , Neoplasias/genética , Neoplasias/patología , Citidina Desaminasa/genética , Desaminasas APOBEC/genética , Desaminasas APOBEC/metabolismo , Fumar Tabaco
14.
mBio ; 14(4): e0078223, 2023 08 31.
Artículo en Inglés | MEDLINE | ID: mdl-37555667

RESUMEN

HIV-1 must overcome multiple innate antiviral mechanisms to replicate in CD4+ T lymphocytes and macrophages. Previous studies have demonstrated that the apolipoprotein B mRNA editing enzyme polypeptide-like 3 (APOBEC3, A3) family of proteins (at least A3D, A3F, A3G, and stable A3H haplotypes) contribute to HIV-1 restriction in CD4+ T lymphocytes. Virus-encoded virion infectivity factor (Vif) counteracts this antiviral activity by degrading A3 enzymes allowing HIV-1 replication in infected cells. In addition to A3 proteins, Vif also targets other cellular proteins in CD4+ T lymphocytes, including PPP2R5 proteins. However, whether Vif primarily degrades only A3 proteins during viral replication is currently unknown. Herein, we describe the development and characterization of A3F-, A3F/A3G-, and A3A-to-A3G-null THP-1 cells. In comparison to Vif-proficient HIV-1, Vif-deficient viruses have substantially reduced infectivity in parental and A3F-null THP-1 cells, and a more modest decrease in infectivity in A3F/A3G-null cells. Remarkably, disruption of A3A-A3G protein expression completely restores the infectivity of Vif-deficient viruses in THP-1 cells. These results indicate that the primary function of Vif during infectious HIV-1 production from THP-1 cells is the targeting and degradation of A3 enzymes. IMPORTANCE HIV-1 Vif neutralizes the HIV-1 restriction activity of A3 proteins. However, it is currently unclear whether Vif has additional essential cellular targets. To address this question, we disrupted A3A to A3G genes in the THP-1 myeloid cell line using CRISPR and compared the infectivity of wild-type HIV-1 and Vif mutants with the selective A3 neutralization activities. Our results demonstrate that the infectivity of Vif-deficient HIV-1 and the other Vif mutants is fully restored by ablating the expression of cellular A3A to A3G proteins. These results indicate that A3 proteins are the only essential target of Vif that is required for fully infectious HIV-1 production from THP-1 cells.


Asunto(s)
Infecciones por VIH , VIH-1 , Humanos , VIH-1/fisiología , Citidina Desaminasa/metabolismo , Productos del Gen vif del Virus de la Inmunodeficiencia Humana/genética , Productos del Gen vif del Virus de la Inmunodeficiencia Humana/metabolismo , Unión Proteica , Desaminasa APOBEC-3G/metabolismo , Citosina Desaminasa/genética , Citosina Desaminasa/metabolismo , Línea Celular , Células Mieloides/metabolismo , Virión/metabolismo , Desaminasas APOBEC/metabolismo
15.
Nature ; 618(7964): 333-341, 2023 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-37165194

RESUMEN

Metastatic cancer remains an almost inevitably lethal disease1-3. A better understanding of disease progression and response to therapies therefore remains of utmost importance. Here we characterize the genomic differences between early-stage untreated primary tumours and late-stage treated metastatic tumours using a harmonized pan-cancer analysis (or reanalysis) of two unpaired primary4 and metastatic5 cohorts of 7,108 whole-genome-sequenced tumours. Metastatic tumours in general have a lower intratumour heterogeneity and a conserved karyotype, displaying only a modest increase in mutations, although frequencies of structural variants are elevated overall. Furthermore, highly variable tumour-specific contributions of mutational footprints of endogenous (for example, SBS1 and APOBEC) and exogenous mutational processes (for example, platinum treatment) are present. The majority of cancer types had either moderate genomic differences (for example, lung adenocarcinoma) or highly consistent genomic portraits (for example, ovarian serous carcinoma) when comparing early-stage and late-stage disease. Breast, prostate, thyroid and kidney renal clear cell carcinomas and pancreatic neuroendocrine tumours are clear exceptions to the rule, displaying an extensive transformation of their genomic landscape in advanced stages. Exposure to treatment further scars the tumour genome and introduces an evolutionary bottleneck that selects for known therapy-resistant drivers in approximately half of treated patients. Our data showcase the potential of pan-cancer whole-genome analysis to identify distinctive features of late-stage tumours and provide a valuable resource to further investigate the biological basis of cancer and resistance to therapies.


Asunto(s)
Genoma Humano , Genómica , Metástasis de la Neoplasia , Neoplasias , Femenino , Humanos , Masculino , Progresión de la Enfermedad , Mutación , Metástasis de la Neoplasia/genética , Neoplasias/genética , Genoma Humano/genética , Estudios de Cohortes , Cariotipificación , Desaminasas APOBEC/metabolismo
16.
mSphere ; 8(2): e0006223, 2023 04 20.
Artículo en Inglés | MEDLINE | ID: mdl-36920219

RESUMEN

The ongoing worldwide monkeypox outbreak is caused by viral lineages (globally referred to as hMPXV1) that are related to but distinct from clade IIb MPXV viruses transmitted within Nigeria. Analysis of the genetic differences has indicated that APOBEC-mediated editing might be responsible for the unexpectedly high number of mutations observed in hMPXV1 genomes. Here, using 1,624 publicly available hMPXV1 sequences, we analyzed the mutations that accrued between 2017 and the emergence of the current predominant variant (B.1), as well as those that that have been accumulating during the 2022 outbreak. We confirmed an overwhelming prevalence of C-to-T and G-to-A mutations, with a sequence context (5'-TC-3') consistent with the preferences of several human APOBEC3 enzymes. We also found that mutations preferentially occur in highly expressed viral genes, although no transcriptional asymmetry was observed. A comparison of the mutation spectrum and context was also performed against the human-specific variola virus (VARV) and the zoonotic cowpox virus (CPXV), as well as fowlpox virus (FWPV). The results indicated that in VARV genomes, C-to-T and G-to-A changes were more common than the opposite substitutions, although the effect was less marked than for hMPXV1. Conversely, no preference toward C-to-T and G-to-A changes was observed in CPXV and FWPV. Consistently, the sequence context of C-to-T changes confirmed a preference for a T in the -1 position for VARV, but not for CPXV or FWPV. Overall, our results strongly support the view that, irrespective of the transmission route, orthopoxviruses infecting humans are edited by the host APOBEC3 enzymes. IMPORTANCE Analysis of the viral lineages responsible for the 2022 monkeypox outbreak suggested that APOBEC enzymes are driving hMPXV1 evolution. Using 1,624 public sequences, we analyzed the mutations that accumulated between 2017 and the emergence of the predominant variant and those that characterize the last outbreak. We found that the mutation spectrum of hMPXV1 has been dominated by TC-to-TT and GA-to-AA changes, consistent with the editing activity of human APOBEC3 proteins. We also found that mutations preferentially affect highly expressed viral genes, possibly because transcription exposes single-stranded DNA (ssDNA), a target of APOBEC3 editing. Notably, analysis of the human-specific variola virus (VARV) and the zoonotic cowpox virus (CPXV) indicated that in VARV genomes, TC-to-TT and GA-to-AA changes are likewise extremely frequent. Conversely, no preference toward TC-to-TT and GA-to-AA changes is observed in CPXV. These results suggest that APOBEC3 proteins have an impact on the evolution of different human-infecting orthopoxviruses.


Asunto(s)
Mpox , Orthopoxvirus , Viruela , Virus de la Viruela , Animales , Humanos , Orthopoxvirus/genética , Virus de la Viruela Vacuna/genética , Virus de la Viruela Vacuna/metabolismo , Mutación , Desaminasas APOBEC/genética , Desaminasas APOBEC/metabolismo
17.
Nat Commun ; 14(1): 16, 2023 01 10.
Artículo en Inglés | MEDLINE | ID: mdl-36627271

RESUMEN

APOBEC3 (A3) proteins are host-encoded deoxycytidine deaminases that provide an innate immune barrier to retroviral infection, notably against HIV-1. Low levels of deamination are believed to contribute to the genetic evolution of HIV-1, while intense catalytic activity of these proteins can induce catastrophic hypermutation in proviral DNA leading to near-total HIV-1 restriction. So far, little is known about how A3 cytosine deaminases might impact HIV-1 proviral DNA integration sites in human chromosomal DNA. Using a deep sequencing approach, we analyze the influence of catalytic active and inactive APOBEC3F and APOBEC3G on HIV-1 integration site selections. Here we show that DNA editing is detected at the extremities of the long terminal repeat regions of the virus. Both catalytic active and non-catalytic A3 mutants decrease insertions into gene coding sequences and increase integration sites into SINE elements, oncogenes and transcription-silencing non-B DNA features. Our data implicates A3 as a host factor influencing HIV-1 integration site selection and also promotes what appears to be a more latent expression profile.


Asunto(s)
Infecciones por VIH , VIH-1 , Humanos , Citidina Desaminasa/genética , Citidina Desaminasa/metabolismo , VIH-1/genética , VIH-1/metabolismo , Desaminasa APOBEC-3G/metabolismo , Citosina Desaminasa/genética , Citosina Desaminasa/metabolismo , Proteínas/metabolismo , Antirretrovirales , Integración Viral/genética , Citidina/metabolismo , Desaminasas APOBEC/genética , Desaminasas APOBEC/metabolismo
18.
Nucleic Acids Res ; 50(21): 12039-12057, 2022 11 28.
Artículo en Inglés | MEDLINE | ID: mdl-36444883

RESUMEN

The human APOBEC family of eleven cytosine deaminases use RNA and single-stranded DNA (ssDNA) as substrates to deaminate cytosine to uracil. This deamination event has roles in lipid metabolism by altering mRNA coding, adaptive immunity by causing evolution of antibody genes, and innate immunity through inactivation of viral genomes. These benefits come at a cost where some family members, primarily from the APOBEC3 subfamily (APOBEC3A-H, excluding E), can cause off-target deaminations of cytosine to form uracil on transiently single-stranded genomic DNA, which induces mutations that are associated with cancer evolution. Since uracil is only promutagenic, the mutations observed in cancer genomes originate only when uracil is not removed by uracil DNA glycosylase (UNG) or when the UNG-induced abasic site is erroneously repaired. However, when ssDNA is present, replication protein A (RPA) binds and protects the DNA from nucleases or recruits DNA repair proteins, such as UNG. Thus, APOBEC enzymes must compete with RPA to access their substrate. Certain APOBEC enzymes can displace RPA, bind and scan ssDNA efficiently to search for cytosines, and can become highly overexpressed in tumor cells. Depending on the DNA replication conditions and DNA structure, RPA can either be in excess or deficient. Here we discuss the interplay between these factors and how despite RPA, multiple cancer genomes have a mutation bias at cytosines indicative of APOBEC activity.


Asunto(s)
ADN de Cadena Simple , Proteína de Replicación A , Humanos , Proteína de Replicación A/genética , Proteína de Replicación A/metabolismo , ADN de Cadena Simple/genética , Citidina Desaminasa/genética , Citidina Desaminasa/metabolismo , Uracil-ADN Glicosidasa/genética , Uracil-ADN Glicosidasa/metabolismo , Replicación del ADN/genética , Citosina/metabolismo , ADN/metabolismo , Uracilo/metabolismo , Desaminasas APOBEC/genética , Desaminasas APOBEC/metabolismo , Desaminación
19.
Science ; 378(6619): 560-565, 2022 11 04.
Artículo en Inglés | MEDLINE | ID: mdl-36264825

RESUMEN

Monkeypox is a viral zoonotic disease endemic in Central and West Africa. In May 2022, dozens of non-endemic countries reported hundreds of monkeypox cases, most with no epidemiological link to Africa. We identified two lineages of monkeypox virus (MPXV) among two 2021 and seven 2022 US monkeypox cases: the major 2022 outbreak variant called B.1 and a minor contemporaneously sampled variant called A.2. Analyses of mutations among these two variants revealed an extreme preference for GA-to-AA mutations indicative of human APOBEC3 cytosine deaminase activity among Clade IIb MPXV (previously West African, Nigeria) sampled since 2017. Such mutations were not enriched within other MPXV clades. These findings suggest that APOBEC3 editing may be a recurrent and a dominant driver of MPXV evolution within the current outbreak.


Asunto(s)
Desaminasas APOBEC , Interacciones Huésped-Patógeno , Monkeypox virus , Mpox , Edición de ARN , Humanos , Mpox/enzimología , Mpox/virología , Monkeypox virus/genética , Monkeypox virus/aislamiento & purificación , Nigeria/epidemiología , Estados Unidos/epidemiología , Mutación , Evolución Molecular , Desaminasas APOBEC/metabolismo , Adenosina/genética , Citidina/genética
20.
Sci Rep ; 12(1): 14972, 2022 Sep 13.
Artículo en Inglés | MEDLINE | ID: mdl-36100631

RESUMEN

During COVID-19 pandemic, mutations of SARS-CoV-2 produce new strains that can be more infectious or evade vaccines. Viral RNA mutations can arise from misincorporation by RNA-polymerases and modification by host factors. Analysis of SARS-CoV-2 sequence from patients showed a strong bias toward C-to-U mutation, suggesting a potential mutational role by host APOBEC cytosine deaminases that possess broad anti-viral activity. We report the first experimental evidence demonstrating that APOBEC3A, APOBEC1, and APOBEC3G can edit on specific sites of SARS-CoV-2 RNA to produce C-to-U mutations. However, SARS-CoV-2 replication and viral progeny production in Caco-2 cells are not inhibited by the expression of these APOBECs. Instead, expression of wild-type APOBEC3 greatly promotes viral replication/propagation, suggesting that SARS-CoV-2 utilizes the APOBEC-mediated mutations for fitness and evolution. Unlike the random mutations, this study suggests the predictability of all possible viral genome mutations by these APOBECs based on the UC/AC motifs and the viral genomic RNA structure.


Asunto(s)
COVID-19 , Edición de ARN , Desaminasas APOBEC/genética , Desaminasas APOBEC/metabolismo , COVID-19/genética , Células CACO-2 , Citidina Desaminasa , Humanos , Mutación , Pandemias , Proteínas , ARN Viral/genética , ARN Viral/metabolismo , SARS-CoV-2/genética
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