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1.
Planta ; 241(2): 403-19, 2015 Feb.
Article in English | MEDLINE | ID: mdl-25326771

ABSTRACT

MAIN CONCLUSION: Six BnaProDH1 and two BnaProDH2 genes were identified in Brassica napus genome. The BnaProDH1 genes are mainly expressed in pollen and roots' organs while BnaProDH2 gene expression is associated with leaf vascular tissues at senescence. Proline dehydrogenase (ProDH) catalyzes the first step in the catabolism of proline. The ProDH gene family in oilseed rape (Brassica napus) was characterized and compared to other Brassicaceae ProDH sequences to establish the phylogenetic relationships between genes. Six BnaProDH1 genes and two BnaProDH2 genes were identified in the B. napus genome. Expression of the three paralogous pairs of BnaProDH1 genes and the two homoeologous BnaProDH2 genes was measured by real-time quantitative RT-PCR in plants at vegetative and reproductive stages. The BnaProDH2 genes are specifically expressed in vasculature in an age-dependent manner, while BnaProDH1 genes are strongly expressed in pollen grains and roots. Compared to the abundant expression of BnaProDH1, the overall expression of BnaProDH2 is low except in roots and senescent leaves. The BnaProDH1 paralogs showed different levels of expression with BnaA&C.ProDH1.a the most strongly expressed and BnaA&C.ProDH1.c the least. The promoters of two BnaProDH1 and two BnaProDH2 genes were fused with uidA reporter gene (GUS) to characterize organ and tissue expression profiles in transformed B. napus plants. The transformants with promoters from different genes showed contrasting patterns of GUS activity, which corresponded to the spatial expression of their respective transcripts. ProDHs probably have non-redundant functions in different organs and at different phenological stages. In terms of molecular evolution, all BnaProDH sequences appear to have undergone strong purifying selection and some copies are becoming subfunctionalized. This detailed description of oilseed rape ProDH genes provides new elements to investigate the function of proline metabolism in plant development.


Subject(s)
Brassica napus/enzymology , Brassica napus/metabolism , Evolution, Molecular , Gene Expression Regulation, Plant , Proline Oxidase/metabolism , Proline/metabolism , Brassica napus/genetics , Brassica napus/growth & development , Plant Proteins/genetics , Plant Proteins/metabolism , Proline Oxidase/genetics
2.
Mol Hum Reprod ; 19(8): 495-9, 2013 Aug.
Article in English | MEDLINE | ID: mdl-23515669

ABSTRACT

At the sequence level, genetic diversity is provided by de novo transmittable mutations that may act as a substrate for natural selection. The gametogenesis process itself is considered more likely to induce endogenous mutations and a clear male bias has been demonstrated from recent next-generation sequencing analyses. As new experimental evidence accumulates, the post-meiotic events of the male gametogenesis (spermiogenesis) appear as an ideal context to induce de novo genetic polymorphism transmittable to the next generation. It may prove to be a major component of the observed male mutation bias. As spermatids undergo chromatin remodeling, transient endogenous DNA double-stranded breaks are produced and trigger a DNA damage response. In these haploid cells, one would expect that the non-templated, DNA end-joining repair processes may generate a repertoire of sequence alterations in every sperm cell potentially transmittable to the next generation. This may therefore represent a novel physiological mechanism contributing to genetic diversity and evolution.


Subject(s)
DNA Damage/genetics , DNA Repair/genetics , Germ Cells/cytology , Spermatogenesis/genetics , Spermatozoa/cytology , Genetic Variation , Haploidy , Humans , Male , Mutation , Polymorphism, Genetic , Spermatozoa/metabolism
3.
Basic Clin Androl ; 23: 11, 2013.
Article in English | MEDLINE | ID: mdl-25780573

ABSTRACT

During the haploid phase of spermatogenesis, spermatids undergo a complex remodeling of the paternal genome involving the finely orchestrated replacement of histones by the highly-basic protamines. The associated striking change in DNA topology is characterized by a transient surge of both single- and double-stranded DNA breaks in the whole population of spermatids which are repaired before spermiation. These transient DNA breaks are now considered part of the normal differentiation program of these cells. Despite an increasing interest in the study of spermiogenesis in the last decade and the potential threat to the haploid genome, the origin of these DNA breaks still remains elusive. This review briefly outlines the current hypotheses regarding possible mechanisms that may lead to such transient DNA fragmentation including torsional stress, enzyme-induced breaks, apoptosis-like processes or oxidative stress. A better understanding of the origin of these DNA breaks will lead to further investigations on the genetic instability and mutagenic potential induced by the chromatin remodeling.


Lors de la phase haploïde de la spermatogenèse, les spermatides subissent un remodelage complexe du génome paternel impliquant un remplacement finement orchestré des histones par des protamines hautement basiques. Le changement topologique de l'ADN associé est caractérisé par une augmentation transitoire de cassures simple et double brins de l'ADN dans l'entière population des spermatides qui sont réparées avant la spermiation. Ces cassures transitoires de l'ADN sont maintenant considérées comme faisant partie du processus normal de différenciation de ces cellules. Malgré un intérêt croissant dans l'étude de la spermiogenèse ces 10 dernières années et la menace potentielle pour le génome haploïde, l'origine de ces cassures d'ADN reste encore incertaine. Cette revue décrit brièvement les hypothèses actuelles concernant les mécanismes possibles qui pourraient mener à cette fragmentation transitoire de l'ADN incluant le stress torsionnel, les cassures enzymatiques, des processus semblables à l'apoptose et le stress oxidatif. Une meilleure compréhension de l'origine de ces cassures d'ADN mènerait à des études approfondies concernant l'instabilité génétique et le potentiel mutagène induit par le remodelage de la chromatine.

4.
Mol Reprod Dev ; 78(12): 951-61, 2011 Dec.
Article in English | MEDLINE | ID: mdl-21919111

ABSTRACT

The dynamic onset of DNA fragmentation in mammalian sperm populations varies widely in different species when the spermatozoa are incubated in vitro at body temperature for several hours, and recent studies have shown that the dynamic rate of DNA fragmentation within a species has considerable predictive value in terms of fertility. The reasons for such variation are unclear, but here we show that differences in protamine sequence and identity could be partially responsible. Sets of 10 normal semen samples from 11 species (ram, goat, boar, white-tailed deer, rabbit, human, domestic and Spanish fighting bull, horse, donkey, rhinoceros, and koala) were cryopreserved, thawed, diluted in an appropriate extender for each species, and then incubated for 4 hr at 37 °C. Semen samples from human infertility patients were also included for comparison with the donors. DNA fragmentation analysis was undertaken immediately after thawing (t(0)) and after 4 hr (t(4)) using the Halomax/Halosperm procedure, and the differences in DNA fragmentation between t(0) and t(4) were examined in the context of the respective protamine genomes. The expression of protamine 2 in a species significantly enhanced the likelihood of sperm DNA fragmentation; greater numbers of cysteine residues in protamine 1 tended to confer increased sperm DNA stability, and there were logical evolutionary relationships between species in terms of their sperm DNA stability. Human spermatozoa from infertility patients exhibited considerably higher DNA instability than the normal semen donors, a difference that could be indirectly attributed to unbalanced protamine 1-to-protamine 2 ratios.


Subject(s)
DNA Fragmentation , Spermatozoa/physiology , Amino Acids/metabolism , Analysis of Variance , Animals , Cattle , Cryopreservation , Cysteine/metabolism , Evolution, Molecular , Humans , Infertility, Male/genetics , Infertility, Male/metabolism , Male , Mammals , Phylogeny , Protamines/metabolism , Rabbits , Species Specificity , Spermatozoa/chemistry , Tissue Donors
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