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Cipriano, R.

Publications and source records attributed to Cipriano, R..

3 recordsLinked to original sources

Investigating Amino acid Enrichments and Patterns in Phase-Separating Proteins: Understanding Biases in Liquid-Liquid Phase Separation

Liquid-Liquid Phase Separation (LLPS) forms membraneless organelles, enhancing biochemical processes. The stickers-and-spacers model explains LLPS but is mainly validated in Prion-like RNA Binding Proteins. We explore peptide motifs in LLPS in broader protein contexts. We developed a computational approach for motif discovery, implemented in 178 Phase-Separating Proteins (PhSePs), complemented by the FuzDrop and CIDER servers, which identified droplet-promoting regions (DPRs) and examined disorder-related characteristics. Our database of PhSePs was analyzed against proteins with low propensity for LLPS. This comparative analysis revealed 129 enriched peptide motifs with folds higher than 0.2, consisting of 3 to 6 residues, with tetrapeptides being the most prevalent. Key features of the enriched motifs included Gly-rich sequences punctuated with aromatic, charged, and polar residues, as well as homopeptide repeats (e.g., GGDR, SRGG, YGGG, QQQQ, PPPP). Analysis of motif presence, frequency, and co-occurrence revealed widely distributed motifs across different DPRs, identified motifs with significant repetitive patterns, and highlighted motif trios that are more likely to co-occur within a sequence. By harvesting this analysis, we developed a data-driven approach for minimalistic peptide design with LLPS propensity, further using the CIDER server for peptide characterization and peptide design refinement. We designed 8 peptides with various motif combinations and amino acid distributions, which were experimentally validated to undergo LLPS, exhibiting liquid-like behavior with diverse molecular mobility patterns and droplet dynamics. Our approach bridges a non-biased computational approach with experimental validation, offering insights into sequence determinants of phase separation, with the potential for designing minimalistic synthetic condensates with tailored properties.

biochemistry↗

Genomic insights on the potential role of the accessory genome in the emergence of a novel geographically restricted K. pneumoniae lineage as a high-risk clone

Klebsiella pneumoniae causes life-threatening nosocomial infections and is featured by a remarkable propensity for multidrug resistance acquisition. Infections caused by multidrug- (MDR) and extensively drug-resistant (XDR) strains lead to a limitation of therapeutic options and an increase in persistent infections, and they are usually represented by high-risk lineages. Based on these features and their relevance to global public health, most of the studies focused on such high-risk clones, and little is known about the epidemiological and evolutionary dynamics of new/geographically restricted lineages. This study aimed to unveil the antimicrobial resistance and virulence genetic repertoire of a clinical XDR K. pneumoniae (Kp199) strain belonging to geographically-restricted ST, not linked to any known clonal complex. Its intrinsic (gyrA, parC, ramR, soxR and soxS mutations) and acquired resistome agreed with the observed XDR phenotype. An extensive arsenal of both antibiotic and heavy metal resistance genes was observed, as well as genes involved with resistance to several antiseptics currently used in clinical settings. The co-occurrence of blaKPC-2 and blaNDM-1 carbapenemase genes in Kp199 was an alarming finding since it could contribute to increased carbapenem resistance. Kp199 virulome was associated with bacterial survival and replication during infections. This study raises concern about a novel, geographically restricted K. pneumoniae lineage harbouring a huge resistome and virulome, which may strongly contribute to its successful establishment as an epidemic lineage. Therefore, our findings underscore the importance of vigilant surveillance and control measures to mitigate the threat posed by the potential emergence of new high-risk pandemic clones.

microbiology↗

Genomic characterization of a pandrug-resistant Klebsiella pneumoniae belonging to the high-risk ST11 in the Brazilian Amazon region

Pandrug-resistant (PDR) K. pneumoniae has been reported sporadically in many countries and remains rare in Brazil. The lack of genomic studies limits the comprehension of the determinants mostly involved with the PDR emergence in K. pneumoniae. This study aimed to unravel the main genetic determinants involved with the PDR background of a clinical ST11 K. pneumoniae recovered in the Brazilian Amazon region. The carbapenem-resistant Kp196 was submitted to WGS and its intrinsic and acquired resistome was assessed by CARD and comparison with wild-type genes. Kp196 resistome was composed of acquired resistance determinants and mutations in chromosomal genes. Among the formers, blaCTX-M-15 and blaNDM-1, blaOXA-9, blaOXA-1, aadA1, aacA4, strAB, aph(3)-VI, aac(3)-IId, qnrS1, qnrB1, oqxAB, dfrA14, sul2, catB3 were found in the vicinity of mobile genetic elements, which could contribute to their spread. Kp196 colistin resistance was multifactorial and attributed to modifications in ArnT (M114L/V117I/R372K), PhoQ (D150G), and the mgrB disruption by ISKpn25. Besides the presence of qnr and oqxAB genes, Kp196 also presented altered GyrA (S83I) and ParC (S80I). An in-block deletion in the repressor RamR, contributing to acrAB overexpression, and the presence of an enhanced-function AcrB variant (S966A), probably led to the Kp196 multidrug and tigecycline resistance. Insertions, in-block deletion, and missense mutations were involved with ompK35-36-37 inactivation, also accounting for the Kp196 multidrug resistance, including carbapenems. The Kp196 PDR profile, especially the carbapenem resistance, was due to the accumulation of different mechanisms, in which modifications in housekeeping genes accounted for a more stable resistome.

genomics↗