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Background: The development of high-throughput sequencing technologies and, as its result, the production of huge volumes of genomic data, has accelerated biological and medical research and discovery. Study on genomic rearrangements is crucial owing to their role in chromosomal evolution, genetic disorders, and cancer.
Results: We present Smash++, an alignment-free and memory-efficient tool to find and visualize small- and large-scale genomic rearrangements between 2 DNA sequences. This computational solution extracts information contents of the 2 sequences, exploiting a data compression technique to find rearrangements. We also present Smash++ visualizer, a tool that allows the visualization of the detected rearrangements along with their self- and relative complexity, by generating an SVG (Scalable Vector Graphics) image.
Conclusions: Tested on several synthetic and real DNA sequences from bacteria, fungi, Aves, and Mammalia, the proposed tool was able to accurately find genomic rearrangements. The detected regions were in accordance with previous studies, which took alignment-based approaches or performed FISH (fluorescence in situ hybridization) analysis. The maximum peak memory usage among all experiments was ∼1 GB, which makes Smash++ feasible to run on present-day standard computers.
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http://dx.doi.org/10.1093/gigascience/giaa048 | DOI Listing |
Nucleic Acids Res
September 2025
Institute of Biophysics of the Czech Academy of Sciences, Královopolská 135, Brno 61200, Czech Republic.
RNA G-quadruplexes (rG4s) are emerging as vital structural elements involved in processes like gene regulation, translation, and genome stability. Found in untranslated regions of messenger RNAs (mRNAs), they influence translation efficiency and mRNA localization. Additionally, rG4s of long noncoding RNAs and telomeric RNA play roles in RNA processing and cellular aging.
View Article and Find Full Text PDFFront Plant Sci
August 2025
Botany Area, Department of Plant Biology and Ecology, Faculty of Biology, University of Seville, Seville, Spain.
Understanding the relationship between macro- and microevolutionary processes and their delimitation remains a challenge. This review focuses on the role of chromosomal rearrangements in plant population differentiation and lineage diversification resulting in speciation, helping bridge the gap between macro- and microevolution through chromosomal evolution. We focus on angiosperms, a group that comprises the majority of extant plant species diversity and exhibits the largest chromosomal and genomic variations.
View Article and Find Full Text PDFACS Omega
September 2025
Genetics and Cellular Biology Laboratory, Center for Biodiversity Studies, Federal University of Pará, Belém 66075-110, Pará, Brazil.
Histone genes contain sequences responsible for coding five types of proteins (H1, H2A, H2B, H3, and H4) that are of great importance for chromatin organization. Their transcriptional regulation through DNA methylation has been little studied. Testudines are ancient reptiles with high cytogenetic diversity (2 = 26-68), with a large number of histone gene loci in their karyotype.
View Article and Find Full Text PDFIMA Fungus
August 2025
State Key Laboratory of Microbial Diversity and Innovative Utilization, Institute of Microbiology, Chinese Academy of Sciences, Beijing, 100101, China Institute of Microbiology, Chinese Academy of Sciences Beijing China.
is a widely consumed edible mushroom and the only species currently cultivated on an industrial scale. Despite its economic importance, its trophic strategy and genomic adaptations remain elusive. Here, we presented high-quality, chromosome-level genome assemblies for two sexually compatible monokaryons (PP78 and PP85) of .
View Article and Find Full Text PDFMol Phylogenet Evol
September 2025
Laboratory of Biodiversity and Evolution of Protozoa, College of Life Sciences, Shaanxi Normal University, Xi'an 710119, China. Electronic address:
Early-branching eukaryotes are associated with the early branching events during eukaryogenesis. Understanding their genomic diversity and evolution can provide insights into the origin and speciation of eukaryotes. Ciliated protists (ciliates) are a group of early-branching unicellular eukaryotes with a high biodiversity, making them excellent models for evolutionary studies.
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