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1.
Biochimie ; 206: 136-149, 2023 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-36334646

RESUMO

Nei Like DNA Glycosylase 1 (NEIL1) is a DNA glycosylase, which specifically processes oxidative DNA damage by initiating base excision repair. NEIL1 recognizes and removes bases, primarily oxidized pyrimidines, which have been damaged by endogenous oxidation or exogenous mutagenic agents. NEIL1 functions through a combined glycosylase/AP (apurinic/apyrimidinic)-lyase activity, whereby it cleaves the N-glycosylic bond between the DNA backbone and the damaged base via its glycosylase activity and hydrolysis of the DNA backbone through beta-delta elimination due to its AP-lyase activity. In our study we investigated our hypothesis proposing that the cancer resistance of the bowhead whale can be associated with a better DNA repair with NEIL1 being upregulated or more active. Here, we report the molecular cloning and characterization of three transcript variants of bowhead whale NEIL1 of which two were homologous to human transcripts. In addition, a novel NEIL1 transcript variant was found. A differential expression of NEIL mRNA was detected in bowhead eye, liver, kidney, and muscle. The A-to-I editing of NEIL1 mRNA was shown to be conserved in the bowhead and two adenosines in the 242Lys codon were subjected to editing. A mass spectroscopy analysis of liver and eye tissue failed to demonstrate the existence of a NEIL1 isoform originating from RNA editing. Recombinant bowhead and human NEIL1 were expressed in E. coli and assayed for enzymatic activity. Both bowhead and human recombinant NEIL1 catalyzed, with similar efficiency, the removal of a 5-hydroxyuracil lesion in a DNA bubble structure. Hence, these results do not support our hypothesis but do not refute the hypothesis either.


Assuntos
Baleia Franca , DNA Glicosilases , Proteínas de Escherichia coli , Liases , Animais , Humanos , Baleia Franca/genética , Baleia Franca/metabolismo , Escherichia coli/genética , Escherichia coli/metabolismo , Reparo do DNA , DNA Glicosilases/genética , DNA Glicosilases/química , DNA Glicosilases/metabolismo , Clonagem Molecular , DNA , RNA Mensageiro , Liases/metabolismo , Proteínas de Escherichia coli/genética , Desoxirribonuclease (Dímero de Pirimidina)/genética , Desoxirribonuclease (Dímero de Pirimidina)/metabolismo
2.
PLoS One ; 16(12): e0260081, 2021.
Artigo em Inglês | MEDLINE | ID: mdl-34882682

RESUMO

RNA editing is a post-transcriptional process in which nucleotide changes are introduced into an RNA sequence, many of which can contribute to proteomic sequence variation. The most common type of RNA editing, contributing to nearly 99% of all editing events in RNA, is A-to-I (adenosine-to-inosine) editing mediated by double-stranded RNA-specific adenosine deaminase (ADAR) enzymes. A-to-I editing at 'recoding' sites results in non-synonymous substitutions in protein-coding sequences. Here, we present studies of the conservation of A-to-I editing in selected mRNAs between pigs, bowhead whales, humans and two shark species. All examined mRNAs-NEIL1, COG3, GRIA2, FLNA, FLNB, IGFBP7, AZIN1, BLCAP, GLI1, SON, HTR2C and ADAR2 -showed conservation of A-to-I editing of recoding sites. In addition, novel editing sites were identified in NEIL1 and GLI1 in bowhead whales. The A-to-I editing site of human NEIL1 in position 242 was conserved in the bowhead and porcine homologues. A novel editing site was discovered in Tyr244. Differential editing was detected at the two adenosines in the NEIL1 242 codon in both pig and bowhead NEIL1 mRNAs in various tissues and organs. No conservation of editing of KCNB1 and EEF1A mRNAs was seen in bowhead whales. In silico analyses revealed conservation of five adenosines in ADAR2, some of which are subject to A-to-I editing in bowheads and pigs, and conservation of a regulatory sequence in GRIA2 mRNA that is responsible for recognition of the ADAR editing enzyme.


Assuntos
Baleia Franca/genética , Edição de RNA , RNA Mensageiro/metabolismo , Suínos/genética , Adenosina/metabolismo , Animais , DNA Glicosilases/genética , Inosina/metabolismo , Fator 1 de Elongação de Peptídeos/genética , Canais de Potássio Shab/genética , Proteína GLI1 em Dedos de Zinco/genética
3.
Semin Cell Dev Biol ; 70: 190-203, 2017 10.
Artigo em Inglês | MEDLINE | ID: mdl-28800931

RESUMO

Much of the current research on longevity focuses on the aging process within a single species. Several molecular players (e.g. IGF1 and MTOR), pharmacological compounds (e.g. rapamycin and metformin), and dietary approaches (e.g. calorie restriction and methionine restriction) have been shown to be important in regulating and modestly extending lifespan in model organisms. On the other hand, natural lifespan varies much more significantly across species. Within mammals alone, maximum lifespan differs more than 100 fold, but the underlying regulatory mechanisms remain poorly understood. Recent comparative studies are beginning to shed light on the molecular signatures associated with exceptional longevity. These include genome sequencing of microbats, naked mole rat, blind mole rat, bowhead whale and African turquoise killifish, and comparative analyses of gene expression, metabolites, lipids and ions across multiple mammalian species. Together, they point towards several putative strategies for lifespan regulation and cancer resistance, as well as the pathways and metabolites associated with longevity variation. In particular, longevity may be achieved by both lineage-specific adaptations and common mechanisms that apply across the species. Comparing the resulting cross-species molecular signatures with the within-species lifespan extension strategies will improve our understanding of mechanisms of longevity control and provide a starting point for novel and effective interventions.


Assuntos
Regulação da Expressão Gênica no Desenvolvimento , Genoma , Longevidade/genética , Metaboloma , Transcriptoma , Animais , Baleia Franca/genética , Baleia Franca/crescimento & desenvolvimento , Baleia Franca/metabolismo , Restrição Calórica , Quirópteros/genética , Quirópteros/crescimento & desenvolvimento , Quirópteros/metabolismo , Humanos , Fator de Crescimento Insulin-Like I/genética , Fator de Crescimento Insulin-Like I/metabolismo , Peixes Listrados/genética , Peixes Listrados/crescimento & desenvolvimento , Peixes Listrados/metabolismo , Longevidade/efeitos dos fármacos , Metformina/farmacologia , Metionina/deficiência , Ratos-Toupeira/genética , Ratos-Toupeira/crescimento & desenvolvimento , Ratos-Toupeira/metabolismo , Sirolimo/farmacologia , Serina-Treonina Quinases TOR/genética , Serina-Treonina Quinases TOR/metabolismo
4.
Cell Rep ; 10(1): 112-22, 2015 Jan 06.
Artigo em Inglês | MEDLINE | ID: mdl-25565328

RESUMO

The bowhead whale (Balaena mysticetus) is estimated to live over 200 years and is possibly the longest-living mammal. These animals should possess protective molecular adaptations relevant to age-related diseases, particularly cancer. Here, we report the sequencing and comparative analysis of the bowhead whale genome and two transcriptomes from different populations. Our analysis identifies genes under positive selection and bowhead-specific mutations in genes linked to cancer and aging. In addition, we identify gene gain and loss involving genes associated with DNA repair, cell-cycle regulation, cancer, and aging. Our results expand our understanding of the evolution of mammalian longevity and suggest possible players involved in adaptive genetic changes conferring cancer resistance. We also found potentially relevant changes in genes related to additional processes, including thermoregulation, sensory perception, dietary adaptations, and immune response. Our data are made available online (http://www.bowhead-whale.org) to facilitate research in this long-lived species.


Assuntos
Baleia Franca/genética , Evolução Molecular , Longevidade/genética , Animais , Genoma , Humanos , Seleção Genética , Análise de Sequência de DNA
5.
Aging (Albany NY) ; 6(10): 879-99, 2014 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-25411232

RESUMO

Mammals vary dramatically in lifespan, by at least two-orders of magnitude, but the molecular basis for this difference remains largely unknown. The bowhead whale Balaena mysticetus is the longest-lived mammal known, with an estimated maximal lifespan in excess of two hundred years. It is also one of the two largest animals and the most cold-adapted baleen whale species. Here, we report the first genome-wide gene expression analyses of the bowhead whale, based on the de novo assembly of its transcriptome. Bowhead whale or cetacean-specific changes in gene expression were identified in the liver, kidney and heart, and complemented with analyses of positively selected genes. Changes associated with altered insulin signaling and other gene expression patterns could help explain the remarkable longevity of bowhead whales as well as their adaptation to a lipid-rich diet. The data also reveal parallels in candidate longevity adaptations of the bowhead whale, naked mole rat and Brandt's bat. The bowhead whale transcriptome is a valuable resource for the study of this remarkable animal, including the evolution of longevity and its important correlates such as resistance to cancer and other diseases.


Assuntos
Adaptação Fisiológica/genética , Baleia Franca/genética , Longevidade/genética , Transcriptoma , Animais , Sequenciamento de Nucleotídeos em Larga Escala , Filogenia , Análise de Sequência de RNA
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