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Construction and Isolation of Recombinant Vaccinia Virus by Homologous Recombination Using Fluorescent Protein Markers.

Genetic modification of vaccinia virus (VACV) is a fundamental and valuable research technique in elucidating the function of VACV genes, as well as the development as vaccine vectors for other infectious diseases, oncolytic therapeutics for cancers, and protein expression systems in mammalian cells. Because of the large size of poxvirus genome and noninfectious feature of the naked viral DNA, construction of recombinant VACV relies on intracellular homologous recombination between transfected DNA and replicating viral DNA in infected cells occurred in VACV infected cells. The efficiency of homologous recombination event for vaccinia virus is relatively low, and recombinant viruses only account for 0.1% of progeny viruses. Therefore, fluorescent protein markers are often included in the transfected DNA to facilitate the selection and screening of recombined viruses. Here we provide a detailed procedure for the design, generation, isolation, and detection of recombinant VACV by homologous recombination using fluorescent protein markers.

Vaccinia virus

Molecular characterization and biological characteristics of a highly pathogenic recombinant ALV-J strain (HUE2023) with cross-clade gp85 recombination.

Avian leukosis virus subgroup J (ALV-J) has undergone extensive diversification into phylogenetically distinct clades, yet whether recombination between these clades within the gp85 envelope glycoprotein generates variants with altered pathogenicity has received little direct investigation. A field strain (HUE2023) was recovered from breeding roosters displaying vascular tumors. The viral genome was sequenced and subjected to phylogenetic and recombination analyses. The three-dimensional structure of gp85 was predicted with AlphaFold3; electrostatic surface potentials and surface hydrophobicity were computed using the Adaptive Poisson-Boltzmann Solver and the Eisenberg hydrophobicity scale, respectively. Pathogenicity and immunosuppressive effects were assessed in Hy-Line Brown chickens. Recombination analysis revealed that HUE2023 is an inter-clade recombinant derived from Clade 1.1 (major parent: JS14NT01) and Clade 1.2 (minor parent: JS09GY3). A single-residue deletion at position 61 within receptor-binding domain 1 (RBD-1), unique to the recombinant, induced a localized conformational rearrangement that generated a concentrated electronegative surface patch and a contiguous hydrophobic pocket not observed in either parental gp85. Animal challenge showed that HUE2023 is highly pathogenic: female chickens in the high-dose group reached only 61% survival and displayed significant growth retardation (P&#x202f;<&#x202f;0.05) together with marked immunosuppression. The recombination in the RBD-1 led to local conformational rearrangement, resulting in a concentrated and negatively charged surface area as well as a continuous hydrophobic pocket, which were never present in any of the parental gp85 sequences. These results indicate that gp85 recombination across clades can yield variants with fundamentally altered receptor-binding surfaces and argue for integrating structural surveillance into ALV-J monitoring programmes.

Animals

Identification of a novel HIV-1 circulating recombinant form (CRF209_cpx) and its descendant unique recombinant form (URF) CRF209_cpx/B among MSM in Guangdong, southern China.

BACKGROUND: The epidemic of human immunodeficiency virus type 1 (HIV-1) continues to pose a significant global health challenge, with increasing genetic diversity. The co-circulation of multiple subtypes among the local population facilitates the emergence of unique or circulating recombinant forms (URFs or CRFs). In China, the predominant strains include CRF07_BC, CRF01_AE, CRF55_01B, and subtype B. This study characterizes a novel CRF209_cpx and its descendant recombinant CRF209_cpx/B among men who have sex with men (MSM) in Guangdong, southern China. METHODS: Individuals infected with URFs with similar genetic characteristics were recruited during routine surveillance of pretreatment drug resistance. Near full-length genomes (NFLGs) were amplified with two overlapping fragments using a serial dilution nested PCR approach after reverse transcription. We used SimPlot and IQ-TREE softwares to conduct recombination analyses and phylogenetic inferences. Time-scaled maximum clade credibility (MCC) phylogenetic trees were reconstructed using BEAST software to estimate evolutionary origins. Genotypic drug resistance mutations were interpreted via the Stanford HIV Database, and coreceptor usage was predicted using geno2pheno coreceptor 2.5 and the HIVcoPRED tool. RESULTS: Four NFLG sequences were obtained and identified as a novel CRF209_cpx, generated by recombination among CRF01_AE, CRF07_BC and subtype B. Phylogenetic analyses revealed that all the parental segments clustered with lineages prevalent among MSM in China. Bayesian evolutionary analysis estimated that the most recent common ancestor (tMRCA) of CRF209_cpx to have evolved between 2011 and 2013. The fifth strain was identified as a URF recombined from nascent CRF209_cpx and B. No transmitted drug resistance mutation was detected in these five sequences. The four CRF209_cpx sequences primarily utilized the CXCR4 coreceptor, while the URF exhibited R5/X4 dual tropism. CONCLUSIONS: The emergence of the complex CRF209_cpx and novel URF of CRF209_cpx/B highlights the active HIV-1 epidemic within the MSM population in Guangdong, underscoring the necessity for enhanced molecular surveillance and precise public health intervention in this key population.

HIV-1

Pervasive HIV recombination limits the utility of circulating recombinant form nomenclature.

The naming of HIV-1 circulating recombinant forms (CRFs)-descendent viruses from the same intersubtype recombination events, is along with the designation of 'subtypes' and 'groups', routinely used to track HIV-1 diversity. However, we argue that continuing to designate all detected CRFs as distinct entities is biologically unjustified, as many represent recombinants of limited epidemiological significance. Indeed, the mechanistic underpinning of HIV-1 recombination highlights the arbitrary nature of naming these incidental recombinants, the majority of which are rarely detected again. This underlines the need to prioritise taxonomically meaningful clades, with a focus on biological significance such as emergence events associated with significant epidemiological spread, phenotypic properties or transmission advantage.

HIV-1

Age-related distribution of homologous recombination deficiency in advanced ovarian carcinoma: a large real-world French cohort.

OBJECTIVE: Tumor genetic testing for BRCA and homologous recombination repair is essential for guiding maintenance therapy in high-grade non-mucinous ovarian carcinomas. While clinical trials (PAOLA-1, PRIMA, ATHENA-MONO, PRIME) have reported homologous recombination deficiency rates of 44% to 67% in cohorts with a median age of 61, real-world data suggest age-related variations. We aimed to evaluate homologous recombination deficiency prevalence in a large French population and hypothesized a distribution pattern similar to the recent German findings published in 2022, in which older age correlated with lower homologous recombination deficiency rates. METHODS: We retrospectively analyzed advanced ovarian carcinoma cases referred to the Dijon Cancer Center from 191 care centers between 2022 and 2024 for Myriad MyChoice homologous recombination deficiency testing. Data collected included age, histologic type, homologous recombination deficiency status, homologous recombination proficiency status, and genomic instability scores. We compared the distribution of homologous recombination deficiency and HRP tumors in women <60 and &#x2265;60 years using the &#x3c7;2 test. RESULTS: In 1322 advanced ovarian carcinoma cases with a median age of 70.1 years, the overall rates were 35.3% homologous recombination deficiency and 64.7% homologous recombination proficiency. A sub-analysis of 1226 high-grade cases (median age 70.4; including high-grade serous carcinoma, clear-cell carcinoma, undifferentiated carcinomas, and carcinosarcoma) showed 36.5% homologous recombination deficiency and 63.5% homologous recombination proficiency. Notably, patients aged &#x2265;60 years had a significantly higher likelihood of presenting with a homologous recombination proficiency tumor compared with those aged <60 years (65.8% vs 53.2%, p < .001). Among 42 clear-cell carcinoma cases, 97.6% exhibited homologous recombination proficiency status. CONCLUSIONS: In this large real-world cohort of advanced ovarian carcinoma, we observed a notably higher prevalence of homologous recombination proficiency tumors compared to the 4 clinical trials reported in the literature, with homologous recombination proficiency incidence increasing significantly with age. Given that older patients predominantly present with homologous recombination proficiency tumors, which are associated with poorer survival, treatment strategies should be adjusted to better address the specific needs of this demographic.

Humans

Homologous recombination-deficient high-grade serous ovarian cancers exhibit distinct morphological features.

OBJECTIVE: Access to homologous recombination testing remains limited in many centers. We aim to correlate the morphology and immunophenotype of high-grade serous ovarian carcinoma with homologous recombination statuses. METHODS: A retrospective analysis of a high-grade serous ovarian carcinoma tumors with known homologous recombination status. A pathological review of morphology was performed for each tumor, along with immunohistochemical profiling. Tumor morphology was classified as (1) solid, pseudo-endometrioid, or transitional (2) micropapillary or nested. RESULTS: Overall, 81 tumors were included. The median age was 62 (interquartile range; 52-71). Of those, 27 (33.3%) tumors were BRCA1mut, 19 (23.5%) were BRCA2mut, 15 (18.5%) tumors had no BRCA1 or BRCA2 mutations but exhibited a genomic instability score &#x2265;42 and were classified as BRCA1/2-wild-type with homologous recombinant deficient. The remainder 20 (24.7%) cases were homologous recombinant proficient. The proportion of tumors with solid transitional-like morphology was higher in BRCA1 (12/21, 57%) and BRCA2 (12/18, 67%) compared to the tumors with homologous recombinant proficient (3/17, 18%), p =.019. When stratified by genomic instability score, tumors with low score (genomic instability score <26) exhibited 0% solid transitional-like morphology versus 43% solid transitional-like morphology in high-score (genomic instability score >26), p =.03. PAX8 diffuse expression was detected in 71% of BRCA1, 65% of BRCA2, 92% of BRCA-wild-type homologous recombinant deficient tumors, and 100% of homologous recombinant proficient tumors, p =.071. The proportion of diffuse expression was higher in homologous recombinant proficient (100%) versus BRCA2 (65%) (Bonferroni-adjusted pairwise comparisons). CONCLUSIONS: Homologous recombinant deficient tumors are associated with the solid transitional-like morphology, with the BRCA1/2-mutated homologous recombinant deficient cases showing the strongest correlation. Genomic instability score alone may not fully capture the spectrum of homologous recombinant deficient-related phenotypes. The variation in solid transitional-like morphology features among BRCA1- or BRCA2-mutated, BRCA1/2- wild-type with homologous recombinant deficient, and homologous recombinant proficient cases may reflect the diverse biological spectrum of different homologous recombination alterations.

Humans

Evolution of maize recombination landscape during domestication.

Despite the plethora of knowledge about the benefits of meiotic recombination and numerous theoretical studies examining how recombination rates evolve, there is a general lack of empirical support and consensus across species. To fill this knowledge gap, we characterized the evolution of recombination landscape in maize during its domestication from teosinte and related the observed changes to established theoretical frameworks. Through examining recombination in experimental populations of maize and teosinte and the population genomics approach of identifying historical recombination events using ancestral recombination graph inference to generate saturated maize and teosinte recombination maps, we found that during domestication, maize experienced a 12% increase in its genome-wide recombination rate. Furthermore, maize evolved higher recombination rates on the long arms of chromosomes in regions closer to centromeres, where recombination is generally very low. The repatterning of crossover events came from changes in global crossover positioning rather than alterations in cis-acting chromatin factors. Consequently, we found evidence of selection acting on trans-acting recombination modifiers affecting crossover interference and controlling the interference-dependent class I crossover pathway. We show that CO repatterning was likely beneficial for maize fitness, as significant recombination rate increases were predominantly in gene-rich regions, which harbor domestication-related variation. This work suggests genomic and mechanistic processes leading to the evolution of meiotic recombination landscape in response to directional selection pressure and provides evidence for the evolutionary advantage of recombination.

Zea mays

Comparative Phylogenetics Reveal Clade-specific Drivers of Recombination Rate Evolution Across Vertebrates.

Meiotic recombination is an integral cellular process, required for the production of viable gametes. Recombination rate is a fundamental genomic parameter, modulating genomic responses to selection. Our increasingly detailed understanding of its molecular underpinnings raises the prospect that we can gain insight into trait divergence by examining the molecular evolution of recombination genes from a pathway perspective, as in mammals, where protein-coding changes in later stages of the recombination pathway are connected to divergence in intra-clade recombination rate. Here, we leverage increased availability of avian and teleost genomes to reconstruct the evolution of the recombination pathway across two additional vertebrate clades: birds, which have higher and more variable rates of recombination and similar divergence times to mammals, and teleost fish, which have much deeper divergence times. Rates of molecular evolution of recombination genes are highly correlated between vertebrate clades and significantly elevated compared to control panels, suggesting that they experience similar selective pressures. Avian recombination genes are significantly more likely to exhibit signatures of positive selection than other clades, unrestricted to later stages of the pathway. Signatures of positive selection in genes linked to recombination rate variation in mammalian populations and those with signatures of positive selection across the avian phylogeny are highly correlated. In contrast, teleost fish recombination genes have significantly less evidence of positive selection despite high intra-clade recombination rate variability. Gaining clade-specific understanding of patterns of variation in recombination genes can elucidate drivers of recombination rate and thus, factors influencing genetic diversity, selection efficacy, and species divergence.

Animals

Evolution of homologous recombination rates across bacteria.

Bacteria are nonsexual organisms but are capable of exchanging DNA at diverse degrees through homologous recombination. Intriguingly, the rates of recombination vary immensely across lineages where some species have been described as purely clonal and others as "quasi-sexual." However, estimating recombination rates has proven a difficult endeavor and estimates often vary substantially across studies. It is unclear whether these variations reflect natural variations across populations or are due to differences in methodologies. Consequently, the impact of recombination on bacterial evolution has not been extensively evaluated and the evolution of recombination rate-as a trait-remains to be accurately described. Here, we developed an approach based on Approximate Bayesian Computation that integrates multiple signals of recombination to estimate recombination rates. We inferred the rate of recombination of 162 bacterial species and one archaeon and tested the robustness of our approach. Our results confirm that recombination rates vary drastically across bacteria; however, we found that recombination rate-as a trait-is conserved in several lineages but evolves rapidly in others. Although some traits are thought to be associated with recombination rate (e.g., GC-content), we found no clear association between genomic or phenotypic traits and recombination rate. Overall, our results provide an overview of recombination rate, its evolution, and its impact on bacterial evolution.

Bacteria

Mapping Species Birth Across the Recombination Landscapes of Marine Snails.

Understanding the drivers of heterogeneous genomic divergence is essential for uncovering the mechanisms that generate and constrain biodiversity. The extent to which adaptation and speciation are facilitated by reorganisation of the recombination landscape remains untested in many systems. Marine ecosystems, with their dynamic and fluid habitats, offer a compelling context to investigate genomic divergence. In this study, we mapped genomic divergence and selection across recombination landscapes of parapatric marine snail sister species that we show have recently undergone secondary contact. Regions of reduced recombination were enriched for genes exhibiting signatures of negative selection, whereas regions of high recombination were associated with genes under putative positive selection. Notably, the recombination landscape of the population in parapatry of one species (Scurria viridula) differs markedly from that of the other population within this same species, highlighting the role of introgression in reshaping recombination landscapes. In the other species (Scurria zebrina), conservation of the recombination landscape and divergent selection among populations suggest trapping of beneficial allele combinations in regions of low recombination maintains the identity of this species. Among species, signals of divergence with gene flow consistently cluster within specific genomic regions characterised by high recombination rate variation among the populations of S. viridula. These results challenge traditional theoretical expectations of recombination evolution by showing that the causes of genomic divergence can be population-specific. This study demonstrates that recombination landscapes are key modulators of genomic divergence, with contemporary evolutionary shifts that could enable populations to adapt to distinct environments. Our findings provide new insights into the interplay between recombination, selection, and gene flow during speciation, underscoring the complexity of evolutionary trajectories in marine systems.

Genetic Introgression

High prevalence of PRDM9-independent recombination hotspots in placental mammals.

In many mammals, recombination events are concentrated in hotspots directed by a sequence-specific DNA-binding protein named PRDM9. Intriguingly, PRDM9 has been lost several times in vertebrates, and notably among mammals, it has been pseudogenized in the ancestor of canids. In the absence of PRDM9, recombination hotspots tend to occur in promoter-like features such as CpG islands. It has thus been proposed that one role of PRDM9 could be to direct recombination away from PRDM9-independent hotspots. However, the ability of PRDM9 to direct recombination hotspots has been assessed in only a handful of species, and a clear picture of how much recombination occurs outside of PRDM9-directed hotspots in mammals is still lacking. In this study, we derived an estimator of past recombination activity based on signatures of GC-biased gene conversion in substitution patterns. We quantified recombination activity in PRDM9-independent hotspots in 52 species of boreoeutherian mammals. We observe a wide range of recombination rates at these loci: several species (such as mice, humans, some felids, or cetaceans) show a deficit of recombination, while a majority of mammals display a clear peak of recombination. Our results demonstrate that PRDM9-directed and PRDM9-independent hotspots can coexist in mammals and that their coexistence appears to be the rule rather than the exception. Additionally, we show that the location of PRDM9-independent hotspots is relatively more stable than that of PRDM9-directed hotspots, but that PRDM9-independent hotspots nevertheless evolve slowly in concert with DNA hypomethylation.

Animals

Effects of recombination on multi-drug resistance evolution in Plasmodium falciparum malaria.

When multiple beneficial alleles at multiple loci are present in a population but not linked together in any one individual, there is no general evolutionary result that determines whether recombination will speed up or slow down the emergence and evolution of genotypes carrying multiple beneficial alleles. Translated to infectious disease control, this evolutionary uncertainty means that when multiple types of drug resistance are present we do not know whether recombination will act more strongly to (1) bring together single-resistant genotypes into multi-drug resistant (MDR) genotypes, or (2) break apart MDR genotypes into single-resistant genotypes. In this paper, we introduce a new version of an established and validated individual-based malaria transmission model where we have added 25 drug-resistance related loci, individual mosquito bites, and mosquitoes feeding on multiple hosts in a single meal (interrupted feeds) allowing for recombination events of different Plasmodium falciparum genotypes from different hosts. Recombination among P. falciparum genotypes in this model occurs from two sources of variation, multi-clonal infections in single hosts and interrupted feeds on multiple hosts, and we show that 80% to 97% of MDR recombinant falciparum genotypes are projected to occur from single uninterrupted bites on hosts with multi-clonal infections (for malaria prevalence&#x2009;>&#x2009;5%). Increases in the model's interrupted feeding rate slowly increase the number of recombination events occurring from interrupted feeds. A comparison of drug-resistance management strategies with this new model shows that, over a 15-year timeframe, triple artemisinin-combination therapies (ACT) strategies show the largest reductions in treatment failures and the longest delays until artemisinin resistance reaches a critical 1% threshold. Multiple first-line therapies (MFT) are second best under these criteria, and ACT cycling approaches are third best. When compared to cycling strategies, MFT strategies generate a greater diversity of recombinant genotypes but fewer recombination events generating MDR and slower emergence of these recombinant MDR genotypes.

Plasmodium falciparum

Genetic Evolution Between HIV-1 Groups M and O: HIV-1/MO Recombinant Forms.

HIV exhibits significant genetic diversity, with genetic recombination being a major evolutionary process. The co-circulation of HIV-1/M and HIV-1/O variants has led to the description of 20 HIV-1/M+O dual infections since 1998. Despite the genetic divergence between these variants, HIV-1/M+O dual infections have resulted in the emergence of HIV-1/MO intergroup recombinant forms, with 20 unique HIV-1/MO recombinant forms (URF_MO) currently described, raising the question of a possible benefit of the recombination and the modalities of their emergence. This review summarized the current knowledge of HIV-1/MO recombinant forms, including their virological and genetic characteristics, phylogenetic analysis, genome profiles, and breakpoints number and location. This study also identified the potential impacts of HIV-1/MO recombination on diagnosis, monitoring, and treatment, as well as the replicative capacity of such recombinants. This review highlighted the greater diversity and complexity of HIV-1/MO recombinants than originally thought, offering new research perspectives on their emergence and virological properties.

HIV-1

Frequent Genomic Recombination in the 5'-Proximal Region Characterizes Human Adenovirus Species C Evolution.

To advance our understanding of the molecular recombination dynamics of circulating human adenovirus species C (HAdV-C) strains, whole genome sequence (WGS) analysis of seven strains representing five genotypes (P1H1F1, P1H2F2, P89H5F5, P2H2F2, and Px1/Ps3H1F1) isolated from pediatric severe acute respiratory infection (SARI) cases in China were performed, involving sequence similarity assessment, phylogenetic inference, and recombination mapping. The genomic analysis of seven strains showed substantial nucleotide identity (93.5%-99.2%) and distinct recombination patterns. Further comparative recombinant analysis with eight prototype strains and 214 publicly available strains revealed that strains with high genomic similarity or evolutionary relatedness showed substantial conservation in the posterior genomic regions, while the 5'-proximal ~14&#x2009;000&#x2009;bp region, particularly E1 and E2B regulatory and replication-associated genes, displayed significant recombination activity. In addition, identical or similar recombination patterns were found in the genomes of strains with high sequence identity and homology, which had been detected by different surveillance systems, and in multiple provinces in China and other countries. Further analysis revealed an independent evolutionary cluster for two strains (Henan2018-431 and Jilin2019-101), which also harbored fragments of unknown origin within the E3 region, potentially representing novel HAdV-C variants. These findings highlight the critical role of frequent recombination in HAdV-C evolution, particularly in low-diversity genomic regions, and emphasize the importance of WGS-based surveillance for tracking emerging recombinant strains with public health implications.

Humans

Genomic surveillance of enterovirus D68 circulating in 2025 reveals the emergence of a novel A2/B3 recombinant lineage.

Enterovirus D68 (EV-D68) has re-emerged over the past decade as a significant respiratory pathogen associated with severe respiratory disease and acute flaccid myelitis. Its circulation has typically followed a biennial pattern, with predominance in late summer and early fall, a pattern that was temporarily disrupted during the COVID-19 pandemic. Surveillance in 2025 revealed off-season circulation of EV-D68. This study describes the genomic characteristics of the 2025 EV-D68 viruses and the clinical features of affected patients. Between May and December 2025, remnant respiratory specimens positive for rhinovirus/enterovirus were screened for EV-D68 and subjected to whole-genome sequencing. Phylogenetic analyses were performed using maximum-likelihood methods. Recombination was assessed using subgenomic phylogenies, SimPlot similarity and BootScan analyses, and read-level inspection. Among 1,321 patients tested, 147 (11.1%) were EV-D68-positive, and 119 (81.0%) yielded complete genomes. EV-D68 positivity increased in July 2025, peaked in August (~21%), and remained elevated through September and October, exceeding levels observed in 2024. Patients had a median age of 36 years, with infections disproportionately affecting older adults. Phylogenetic analysis demonstrated exclusive circulation of subclade A2. Five genomes formed a distinct recombinant lineage (A2-Re). Subgenomic phylogenies showed clustering with A2 viruses in the P1 region and with B3 viruses in the P2-P3 regions. SimPlot and BootScan analyses identified a recombination breakpoint near the 2A/2B junction (~nt 3,700). The recombinant lineage was associated with temporally clustered cases in September-October. These findings demonstrate recombination between distinct EV-D68 subclades and underscore the importance of whole-genome surveillance for accurate viral characterization. Continued genomic monitoring is essential for detecting emerging variants with potential implications for transmissibility, pathogenicity, and public health preparedness.IMPORTANCEThis study highlights an increased off-season circulation of Enterovirus D68 (EV-D68) and a higher burden of disease in adults in 2025. The identification of a novel A2-B3 recombinant lineage provides evidence of ongoing viral evolution through recombination, a mechanism that may alter transmissibility, virulence, or immune responses. Detection of this lineage in temporally clustered cases suggests local transmission and underscores the potential for rapid spread of newly emerged variants. These findings emphasize the limitations of partial genomic approaches and the critical role of whole-genome sequencing in accurately characterizing circulating strains and identifying recombination events. Enhanced genomic surveillance is essential to detect emerging variants in real time, inform diagnostic assay performance, and support public health responses. Continued monitoring of EV-D68 evolution will be important for anticipating changes in disease burden, guiding clinical awareness, and strengthening preparedness for future outbreaks.

Humans

Rapid spread of the SARS-CoV-2 Omicron XDR lineage derived from recombination between XBB and BA.2.86 subvariants circulating in Brazil in late 2023.

Recombination plays a crucial role in the evolution of SARS-CoV-2. The Omicron XBB* recombinant lineages are a noteworthy example, as they have been the dominant SARS-CoV-2 variant worldwide in the first half of 2023. Since November 2023, a new recombinant lineage between Omicron subvariants XBB and BA.2.86, designated XDR, has been detected mainly in Brazil. In this study, we reconstructed the spatiotemporal dynamics and estimated the absolute and relative transmissibility of the XDR lineage. The XDR lineage displayed a recombination breakpoint in the ORF1a-coding region, and the most closely related sequences to the 5' and 3' ends of the recombinant correspond to JD.1.1 and JN.1.1 lineages, respectively. The first XDR sequences were detected in November 2023 in the Northeastern Brazilian region, and their prevalence rapidly surged from <1% to 25% by February 2024. The Bayesian phylogeographic analysis supports that the XDR lineage likely emerged in the Northeastern Brazilian region around late October 2023 and rapidly disseminated within and outside Brazilian borders from mid-November onward. The median effective reproductive number of the XDR lineage in Brazil during the initial expansion phase was estimated to be around 1.5, and the average relative instantaneous reproduction numbers of XDR and JN* lineages were estimated to be 1.37 and 1.29 higher than that of co-circulating XBB* lineages. In summary, these findings support that the recombinant lineage XDR arose in the Northeastern Brazilian region in October 2023, shortly after the first detection of JN.1 sequences in the country. In Brazil, the XDR lineage exhibited a higher transmissibility level than its parental XBB.* lineages and is spreading at a rate similar to or slightly faster than the JN.1* lineages.IMPORTANCEThis study highlights the emergence and rapid dissemination of the recombinant SARS-CoV-2 XDR lineage, derived from the Omicron lineages JD.1.1 and JN.1.1. The XDR lineage exhibited equivalent transmissibility to its JN.1* parental lineages and quickly spread across Brazil in late 2023. The findings underscore the critical role of real-time genomic surveillance in detecting novel variants with higher transmission potential. By utilizing phylogenetic and epidemiological methods, this research provides important insights into the molecular dynamics of XDR, which could inform public health responses and vaccine composition updates. The study's significance lies in its ability to document the impact of recombination on viral evolution, offering valuable information to the field of virology and pandemic preparedness.

Brazil

BRCA1 safeguards genome integrity by activating chromosome asynapsis checkpoint to eliminate recombination-defective oocytes.

In the meiotic prophase, programmed DNA double-strand breaks are repaired by meiotic recombination. Recombination-defective meiocytes are eliminated to preserve genome integrity in gametes. BRCA1 is a critical protein in somatic homologous recombination, but studies have suggested that BRCA1 is dispensable for meiotic recombination. Here we show that BRCA1 is essential for meiotic recombination. Interestingly, BRCA1 also has a function in eliminating recombination-defective oocytes. Brca1 knockout (KO) rescues the survival of Dmc1 KO oocytes far more efficiently than removing CHK2, a vital component of the DNA damage checkpoint in oocytes. Mechanistically, BRCA1 activates chromosome asynapsis checkpoint by promoting ATR activity at unsynapsed chromosome axes in Dmc1 KO oocytes. Moreover, Brca1 KO also rescues the survival of asynaptic Spo11 KO oocytes. Collectively, our study not only unveils an unappreciated role of chromosome asynapsis in eliminating recombination-defective oocytes but also reveals the dual functions of BRCA1 in safeguarding oocyte genome integrity.

Oocytes

Response to divergent selection on meiotic recombination in Saccharomyces cerevisiae.

Meiotic recombination is a key driver of evolution in sexually reproducing species, reshaping genetic diversity by generating novel allelic combinations. The rate of recombination varies substantially across living organisms depending on cis- or trans-acting genetic elements, as seen in many species, including the yeast Saccharomyces cerevisiae. Here, we report on an experimental evolution-based study to better understand the factors shaping this natural variation. Starting with a genetically diverse population of S. cerevisiae, we have carried out recurrent divergent selection on recombination rate using a fluorescence-based sorting approach in four independent lineages. After ten generations, we observed an average response of recombination rate of +28% after positive selection and -24% after negative selection, within the interval used for selection. In the adjacent region, however, we observed a weaker response in the opposite direction, and no response in four other unlinked genomic regions. Whole-genome sequencing of individuals selected for high recombination revealed mixed outcomes in the four independently evolved lineages for high genome-wide recombination rates. However, all four lineages showed selection for high recombination locally, with particular haplotypes heavily favored and sequence- or structural variation-based heterozygosity selected against within the selection interval. Overall, this experimental evolution approach provides original and useful insights into the evolvability of the meiotic recombination rate and the associated genetic determinants.

Meiotic recombination