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Patneedi, S. K.

Publications and source records attributed to Patneedi, S. K..

2 recordsLinked to original sources

Evolutionary divergence in sympatric populations of the fungal pathogen Alternaria alternata across wild tomato hosts

Alternaria alternata is a globally distributed fungal pathogen with a broad host range, increasingly affecting both tomato crops and wild tomato relatives. The genomic basis of this ecological breadth in A. alternata remains poorly understood. Here we leverage the opportunity of wild pathosystems to study pathogen evolution and diversity beyond agricultural settings. We sampled isolates from wild tomato species across a 2,500 km range in South America, producing highly contiguous genomes, to investigate population structure. Our comparative genomics analyses reveal that A. alternata sensu stricto consists of two divergent clades. Strikingly, this divergence is not linked to host species, geography, or habitat type. Transposable elements contribute to variation within clades but do not explain their separation. Although some signs of recombination are present, reproductive mode appears stable across clades. Notably, global reference isolates cluster with one clade, while the other, more diverse clade is only found in wild populations. We hypothesize that these wild populations may act as reservoirs of evolutionary potential. These findings challenge prevailing assumptions about the population structure of necrotrophic pathogens and raise new questions about how genetic divergence can persist without ecological or geographic isolation. Media summary (lay abstract)The fungus Alternaria alternata is an emerging threat on tomato and potato crops. In a previous study, we found that it also infects wild tomato plants over a large range in Chile and Peru. Here we sequenced and compared full genomes of the fungi. Surprisingly, they formed two distinct groups that do not reflect different host plant species, geographical locations, or environments. One of those groups is related more closely to global reference samples, while the other group is more diverse. This suggests wild plants may quietly harbour forms of the fungus that could affect crops in the future.

genomics↗

Horizontal transfer of accessory chromosomes in fungi - a regulated process for exchange of genetic material?

Horizontal transfer of entire chromosomes has been reported in several fungal pathogens, often significantly impacting the fitness of the recipient fungus. All documented instances of horizontal chromosome transfers (HCTs) showed a marked propensity for accessory chromosomes, consistently involving the transfer of an accessory chromosome while other chromosomes were seldom, if ever, co-transferred. The mechanisms underlying HCTs, as well as the factors regulating the specificity of HCTs for accessory chromosomes, remain unclear. In this perspective, we provide an overview of the observed propensity in reported cases of horizontal chromosome transfers. We hypothesize the existence of a signal that distinguishes mobile, i.e., horizontally transferred, accessory chromosomes from the rest of the donor genome. Recent findings in Metarhizium robertsii and Magnaporthe oryzae, suggest that a mobile accessory chromosome may contain putative histones and/or histone modifiers, which could generate such a signal. Based on this, we propose that mobile accessory chromosomes may encode the machinery required for their own horizontal transmission, implying that HCT could be a regulated process. Finally, we present evidence of substantial differences in codon usage bias between core and accessory chromosomes in 14 out of 19 analysed fungal species and strains. Such differences in codon usage bias could indicate past horizontal transfers of these accessory chromosomes. Interestingly, HCT was previously unknown for many of these species, suggesting that the horizontal transfer of accessory chromosomes may be more widespread than previously thought and, therefore, an important factor in fungal genome evolution.

evolutionary biology↗