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The Long Road to Long-Acting: What Oral PrEP and CAB-LA Teach Us About Scaling Lenacapavir.

Despite significant biomedical advances, human immunodeficiency virus (HIV) remains a persistent global health crisis, with over 40 million people affected as of 2023, two-thirds of whom live in the World Health Organization (WHO) African Region. However, from an HIV prevention perspective, the more urgent concern is the continued occurrence of approximately 1.3 million new infections annually, particularly in sub-Saharan Africa and in settings where incidence is stable or increasing. This commentary explores the evolving landscape of HIV prevention, focusing on the trajectory of oral pre-exposure prophylaxis (PrEP), long-acting injectable cabotegravir (CAB-LA), and the newly emerging lenacapavir. While oral PrEP opened new possibilities, adherence challenges have limited its impact. CAB-LA demonstrated superior efficacy but encountered access, cost, and delivery barriers that restricted uptake. Lenacapavir, offering 6-monthly subcutaneous dosing with ≥ 99.9% efficacy in trials, holds the potential to overcome these hurdles. As of May 2026, lenacapavir had received regulatory approval in 17 countries, including several African nations, while regulatory reviews remained ongoing in multiple additional countries, reflecting the rapid global expansion of access to this long-acting HIV prevention option. However, its success depends on clinical promise, timely licensing, affordability, and integration into health systems. Drawing from real-world lessons of oral PrEP and CAB-LA, this paper argues that a proactive, coordinated rollout of lenacapavir could dramatically expand prevention reach. With global stakeholders aiming for 3 million users by 2028 and strategic licensing in 120 countries, the groundwork is in place. The recent release of WHO guidance recommending lenacapavir as an additional PrEP option further strengthens this momentum. Yet, equitable delivery, user-centred models, and strong policy backing will be critical. Ultimately, long-acting PrEP is not just a clinical breakthrough; it is a test of health systems' ability to deliver innovation at scale.

Humans

Evolutionary adaptations of a pediatric pathogen: low-inflammatory and high-resistance phenotypes in the emerging Salmonella typhimurium monophasic variant 1,4,[5],12:i:

Salmonella enterica serovar 1,4,[5],12:i:- (S.1,4,[5],12:i:-), a monophasic variant of Salmonella typhimurium (S. typhimurium), is an emerging multidrug-resistant pathogen posing a significant threat to pediatric health. Research on this variant remains limited, and due to challenges associated with traditional identification methods, S.1,4,[5],12:i:- has often been misclassified as S. typhimurium. This study collected clinical data from 122 children infected with S.1,4,[5],12:i:- and 42 with traditional S. typhimurium in Fujian Province, China, between 2014 and 2023. Whole-genome sequencing was used for strain analysis. Our findings revealed that 77.87% of children with S.1,4,[5],12:i:- infection were aged between 1 month and 2 years. Compared with traditional S. typhimurium, children with S.1,4,[5],12:i:- exhibited milder clinical symptoms, as evidenced by lower levels of the inflammatory marker C-reactive protein (16.53 mg/L vs. 33.94 mg/L, P < 0.05) and a lower hospitalization rate (26.23% vs. 42.86%, P < 0.05). These differences may be attributed to the high carriage rate of the anti-inflammatory gene gogB in S.1,4,[5],12:i:- (95.08% vs. 16.67%, P < 0.0001). Additionally, S.1,4,[5],12:i:- exhibited a higher resistance rate to multiple antibiotics, particularly ceftriaxone, than traditional S. typhimurium (32.79% vs. 7.14%, P < 0.001). This increased resistance may be associated with the carriage of the IncHI2/IncHI2A plasmid. The S.1,4,[5],12:i:- ST34 clone prevalent in this region aligns with the global epidemic trend but exhibits greater genetic diversity. Overall, the stealthy evolutionary adaptation of low-inflammation and high-resistance provides novel insights into this variant's global dominance. These findings underscore the importance of heightened clinical awareness and targeted interventions, particularly for vulnerable pediatric populations. IMPORTANCE S.1,4,[5],12:i:- poses a growing global health threat, particularly endangering infants and young children. Characterized by increasing prevalence, multidrug resistance, and diagnostic challenges, this variant demonstrates milder inflammatory responses yet stronger antibiotic resistance than traditional S. typhimurium in pediatric infections. Crucially, we identified its unique "low-inflammation, high-resistance" evolutionary strategy associated with anti-inflammatory gene gogB and resistance plasmid IncHI2/IncHI2A. The stealthy evolutionary adaptation provides novel insights into this variant's global dominance, while offering critical guidance for improving clinical management and formulating targeted public health measures to protect vulnerable pediatric populations against this cunning pathogen.

Humans

Virus-mediated fate of antimicrobial resistance genes in livestock manure anaerobic digestion.

Antimicrobial resistance (AMR) poses a critical global health challenge, with livestock manure acting as a significant environmental reservoir for antimicrobial resistance genes (ARGs). Anaerobic digestion (AD) is a pivotal process for mitigating ARG dissemination at the livestock-environment-human interface. This study aims to elucidate the global dynamics of ARGs in AD systems, focusing on virus-host interactions and arms race, to identify actionable strategies for AMR control. We analyzed 205 metagenomic (4.5&#x202f;Tb) and 36 meta-transcriptomic (640 Gb) datasets, including 15 newly generated datasets, revealing that pig manure AD harbors the highest ARG abundance (0.668 ARGs/16S rRNA), while AD systems generally exhibit limited transcriptional activation of ARGs. We constructed a viral dataset for livestock manure AD (GVD_LMAD), comprising 59,316 DNA and 727 RNA viral operational taxonomic units (vOTUs). Virus-host interactions established by CRISPR-Cas spacer, tRNA and homology matches revealed 889 lytic infections of antimicrobial-resistant bacteria (ARB) compared to only 18 ARG transduction events. Further analysis showed that the relative abundance of vOTUs assigned to the reduction role (4.11% &#xb1; 3.19%) was substantially higher than that of reproduction (0.72% &#xb1; 0.64%) and transduction (0.19% &#xb1; 0.30%), demonstrating that, among viral processes, lysis outweighs transduction in contributing to ARG abundance reduction in AD. Furthermore, an antiviral defense system (ADS) catalogue (GADSC_LMAD), derived from 2760 high-quality metagenome-assembled genomes (MAGs) containing 39,307 ADS, with ADS prevalence in ARB (7.8&#x202f;&#xb1;&#x202f;6.0 per MAG), indicating an intensified virus-host arms race in AD that may shield ARB from phage lysis. The resulting CRISPR-Cas immune network with expressed spacers targets foreign ARG-carrying sequences (primarily plasmids and ICEs), suggesting a mechanism that restricts horizontal gene transfer (HGT) via conjugation and transformation, despite shielding ARB from phage lysis. Collectively, these findings highlight that viral communities significantly contribute to ARG reduction through phage lysis relative to transduction, while the ADS-mediated arms race, despite protecting ARB, constructs a biological firewall that potentially limits HGT of ARGs. This study provides novel insights into virus-host dynamics as a key mechanism for controlling ARG dissemination in AD systems.

Animals

Molecular characterization and antimicrobial resistance profiles of Shigella flexneri isolates from pediatric clinical cases in Ahvaz, Iran.

Shigella is a highly invasive pathogen that causes dysentery and is associated with significant morbidity and mortality in children under five years of age. This agent is a major public health problem in developing countries. Multiple-locus variable-number tandem repeat (VNTR) analysis (MLVA) is a reliable, cost-effective typing method with high discriminatory power and reproducible results. The rise of drug resistance in Shigella strains is a growing global health threat. Despite the significance of Shigella in Iran, there is limited knowledge about genetic diversity and drug resistance profiles of local strains. Therefore, the purpose of this study was to characterize the genetic diversity and drug resistance profiles of Shigella strains isolated in Ahvaz, Iran. A total of 49 Shigella flexneri isolates were recovered from 500 stool samples of pediatric patients. Routine biochemical tests were used to identify all isolates. Antimicrobial susceptibility testing was performed, and resistance genes were detected by polymerase chain reaction (PCR). Extended-spectrum &#x3b2;-lactamases (ESBL), carbapenemase, and Metallo-&#x3b2;-lactamase (MBL) production were detected phenotypically using combination disk assays and confirmed by the CLSI-recommended modified Carbapenem inactivation method (mCIM) and EDTA-modified carbapenem inactivation method (eCIM). MLVA based on seven VNTR loci was performed to characterize the genetic diversity of the isolates. All 49 isolates were resistant to ceftazidime, trimethoprim/sulfamethoxazole, ampicillin, and ceftriaxone (100% each). High resistance rates were also observed for imipenem 36/49 (73.5%), meropenem 36/49 (73.5%), azithromycin 21/49 (42.9%), and ciprofloxacin 16/49 (32.7%). Furthermore, phenotypic testing revealed ESBL production in 46/49 (93.9%) isolates and carbapenemase activity in 36/49 (73.5%), of which 22/49 (44.9%) were MBL. PCR analysis identified blaCTX-M 38/49 (77.6%) and blaSHV 35/49 (71.4%) as the most prevalent ESBL genes, whereas blaNDM 14/49 (28.6%), and blaOXA-48 14/49 (28.6%) were the most common carbapenemase genes. MLVA typing divided the isolates into 22 different MLVA types, including 10 clusters and 12 singletons, and locus ms21 showed the highest discriminatory power.&#xa0;The isolates exhibited high genetic diversity with a non-clonal distribution of resistance, which indicates dissemination through horizontal gene transfer. Our results demonstrated that mCIM/eCIM and MLVA are viable methods for investigating Shigella species as they are cost-effective, provide quick results, and allow for easy sharing of numerical data between laboratories.

Humans

Prognostic Role of Global DNA Methylation in Renal Cancer Reveals Decitabine Treatment Benefit.

BACKGROUND: Renal cancer presents a significant global health challenge due to its rising incidence and mortality rates. Often undetected in early stages, it complicates diagnosis and treatment. Current therapies face resistance and limited effectiveness, especially in advanced stages. The diverse subtypes of renal cancer highlight the need for new biomarkers and risk assessment tools for targeted treatments. OBJECTIVE: This study aims to assess the prognostic significance of global DNA methylation (GM) levels in renal cancer, identify new biomarkers, and evaluate the therapeutic potential of the DNA methyltransferase inhibitor decitabine. METHODS: Data on RNA sequencing, gene mutations, DNA methylation, and clinical outcomes were collected from TCGA and GEO databases. We calculated global DNA methylation scores (GMS) and categorized patients into high, intermediate, and low GMS groups. Survival analysis and genomic analyses were conducted to explore the relationships between GMS, clinical outcomes, and tumor characteristics. RESULTS: Higher GMS was identified as an independent prognostic factor associated with worse outcomes in renal cancer. Patients with elevated GMS showed increased mutations, copy number variations, and a more aggressive tumor phenotype. Treatment with decitabine was observed to reduce tumor hypermethylation and downregulate cell cycle pathway activity, indicating potential therapeutic benefits. CONCLUSION: Global DNA methylation plays a significant role in renal cancer prognosis. GMS may serve as valuable biomarkers for prognosis and personalized treatment strategies. Decitabine shows potential efficacy for high GMS patients, particularly through its impact on cell cycle regulation, underscoring the importance of personalized approaches in cancer treatment.

Humans

Temporal shifts in gyrA mutation types and sublineage replacement in ST11 Salmonella enterica&#xa0;serovar Enteritidis over a decade (2014-2023): A genomic epidemiological study in Guangxi, China.

The overuse or abuse of antibiotics drives the global health threat of antimicrobial resistance. Although bans on certain veterinary antibiotics, such as colistin, have proven effective, the impact of fluoroquinolone stewardship on the evolution of the foodborne pathogen Salmonella enterica serovar Enteritidis (S. Enteritidis) remains unclear. Here, we conducted a decade-long (2014-2023) retrospective longitudinal genomic epidemiological analysis of 441&#xa0;ST11 S. Enteritidis isolates from Guangxi, China, alongside a global reference dataset of 4297 genomes. Our aim was to elucidate the effect of real-world antibiotic stewardship on the shift of gyrA point mutations and lineage distribution. Surveillance identified three global epidemic clade sublineages (GEC-L2, L3, L4), with the multidrug-resistant GEC-L4 (i.e., GC-c or MMC2), characterized by the gyrA mutation with amino acid substitution D87Y, being domestically dominant (70.07%, 309/441). Following China's 2016 ban on the veterinary use of critical fluoroquinolones, the proportion of the highly resistant GEC-L4 sublineage decreased continuously (from 86.84% in 2017 to 56.00% in 2023), while the less resistant GEC-L3 sublineage (i.e., GC-b or MMC1), mainly characterized by gyrA D87G, increased simultaneously (from 13.16% to 44.00%). This phenomenon might be attributed to the fact that the GEC-L4 sublineage exhibited a higher fitness cost compared with the GEC-L3 sublineage, as confirmed by the competition assay. A Random Forest Model validated that the gyrA mutation with amino acid substitution&#xa0;D87Y was the paramount feature for these sublineages' identification. In contrast, global data showed a continuous increase in gyrA mutations (from 8.63% in 2006 to 68.85% in 2024), primarily D87Y (from 1.44% to 31.15%) and D87N (from 4.32% to 22.95%), correlating with rising average fluoroquinolone consumption. This study provides direct genomic evidence that national-level antibiotic stewardship can drive the replacement of highly resistant sublineages with moderately resistant ones. These findings offer crucial scientific evidence for evaluating the impact of antibiotic management policies and inform strategies for the rational use of antimicrobials.

China

Paratyphoid fever and the genomics of Salmonella enterica serovar Paratyphi A in Taiwan.

BACKGROUND: Salmonella enterica serovar Paratyphi A (S. Paratyphi A) has emerged as a significant global health concern due to the progressive development of antimicrobial resistance and its broader geographic distribution. In Taiwan, paratyphoid fever was historically rare and predominantly associated with imported cases. Since 2022, however, a marked increase in domestically acquired infections has been observed, prompting investigations into their origin and likely route of introduction. METHODS: We analyzed surveillance data on 223 patients with paratyphoid fever reported in Taiwan between January 2001 and December 2024. Whole-genome sequencing and antimicrobial susceptibility testing were performed on 88 S. Paratyphi A isolates obtained from both imported and domestically acquired infections from 2007 to 2024. Phylogenetic analysis and genotyping were conducted to assess genetic relatedness and to trace potential sources of introduction by comparing them with global isolates. RESULTS: Although 55.2% of paratyphoid fever infections were imported, domestically acquired infections became predominant after 2022. Most isolates (76.1%) were resistant to nalidixic acid and nonsusceptible to ciprofloxacin due to gyrA mutations at codon 83 (S83F or S83Y). The majority of domestic isolates were classified as ST129 and paratype 2.4 and showed close genetic relatedness to strains from Indonesia. Of the 31 domestic isolates collected between 2022 and 2024, 30 clustered with Indonesian strains, and 28 exhibited nearly identical genomic profiles, which suggested a prolonged outbreak likely linked to a common external source, such as contaminated imported food. CONCLUSIONS: The genomic evidence suggests that the recent increase in domestically acquired S. Paratyphi A infections in Taiwan represents a prolonged outbreak rather than a sustained epidemiological shift. These infections were closely related to strains from Indonesia, suggesting a potential epidemiological link between the two countries in the transmission of paratyphoid fever. While 76.1% of isolates were nonsusceptible to ciprofloxacin due to gyrA mutations, susceptibility to traditional first-line agents remained high. The observed decline in case numbers in 2024 may indicate that the outbreak is subsiding. Genomic surveillance played a crucial role in tracing sources of infection and informing targeted public health responses.

Paratyphoid Fever

Comparative in vitro antimicrobial susceptibility profiles of clofazimine and pyrifazimine against clinical isolates of Mycobacterium tuberculosis in southwest China.

UNLABELLED: Clofazimine (CFZ) is a key drug used to treat drug-resistant tuberculosis (DR-TB), while pyrifazimine (TBI-166) is an improved riminophenazine derivative with better pharmacokinetics. However, there is a lack of data on its susceptibility and resistance in regions with a high disease burden, such as southwestern China. We compared the in vitro antimicrobial activities of CFZ and TBI-166 against 249 DR-TB clinical isolates (99 multidrug-resistant TB [MDR-TB] and 150 pre-extensively drug-resistant TB [pre-XDR-TB] isolates) from southwestern China. TBI-166 exhibited a concentration-dependent biphasic antimicrobial pattern compared to CFZ. TBI-166 showed significantly greater potency at low concentrations (MIC&#x2085;&#x2080; = 0.031 &#xb5;g/mL TBI-166 vs 0.25 &#xb5;g/mL for CFZ; P < 0.001), but attenuated inhibition at high concentrations (MIC&#x2089;&#x2080; > 4 &#xb5;g/mL vs 1 &#xb5;g/mL for CFZ; P < 0.001). However, at high concentrations, the antibacterial effect of TBI-166 is weaker than that of CFZ (40% of TBI-166-resistant isolates have MIC > 4 &#xb5;g/mL, compared to 6.67% of CFZ-resistant isolates, P < 0.001). Epidemiological cutoff values (ECOFFs) were 1.0 &#xb5;g/mL for CFZ and 0.25 &#xb5;g/mL for TBI-166. Based on these in vitro ECOFFs, the resistance rate to TBI-166 (20.1%, 50/249) was significantly higher than that to CFZ (6.0%, 15/249, P < 0.0001). Whole-genome sequencing revealed that mutations in Rv0678 were prevalent in dual-resistant isolates (10/14) and TBI-166 monoresistant isolates (5/40), while Rv1979c mutations were less frequent, and no pepQ mutations were detected. These mutations differed from known hotspots, suggesting potential novel resistance mechanisms. IMPORTANCE: Drug-resistant tuberculosis (DR-TB) remains a major global health challenge, and optimizing treatments for high-burden regions like southwest China is crucial. This study is the first to detail the differential in vitro activities of clofazimine (CFZ) and the novel TBI-166 against clinical DR-TB isolates from southwest China, alongside their resistance-associated genetic profiles. Findings show TBI-166 has enhanced low-concentration potency but higher resistance rates, plus novel mutations in Rv0678 and Rv1979c linked to resistance. These insights will help refine clinical regimens for DR-TB and strengthen regional resistance surveillance, both of which are essential for controlling the spread of DR-TB in southwest China and informing treatment and surveillance strategies in other similar high-burden areas globally.

Clofazimine

Prospective characterisation of drug-resistant bloodstream infections in Africa and Asia (ACORN2): a surveillance network assessment.

BACKGROUND: Antimicrobial resistance (AMR) is a major global health threat, but there is scarcity of laboratory surveillance data linked to clinical information to determine burden and inform interventions, especially from low-income and middle-income countries. The ACORN2 study sought to address this through prospective case-based surveillance in 19 hospitals across Africa and Asia to characterise drug-resistant infections by origin, clinical syndrome, patient age, outcome, and geographical location. METHODS: Patients were enrolled on selected wards and clinical data were collected daily for community-acquired infections (CAIs). Point prevalence surveys for hospital-acquired infections (HAIs) were conducted weekly. Mortality was assessed at discharge and after 28 days. Linked microbiology data were extracted from local laboratory databases. Primary descriptive analyses focused on WHO Global Antimicrobial Resistance and Use Surveillance System pathogen (target organism) bloodstream infections (BSIs). Comparisons were adjusted for clustering by site using random effects models. FINDINGS: Over 31 months, 41&#x2009;907 infections were characterised from 41&#x2009;032 admissions. Two-thirds were children (19&#x2009;351; 47&#xb7;2%) or neonates (6649; 16&#xb7;2%). There were marked differences in pathogen incidence and antibiotic resistance when clinical infections were stratified by patient age category and infection origin (CAI/HAI). The highest rates of target organism AMR BSI were third-generation cephalosporin-resistant (3GC-R) Escherichia coli (718&#xb7;56/100&#x2009;000 blood cultured infection episodes), meticillin-resistant Staphylococcus aureus (586&#xb7;89/100&#x2009;000 blood cultured infection episodes), and 3GC-R Klebsiella pneumoniae (364&#xb7;92/100&#x2009;000 blood cultured infection episodes). In-hospital mortality was 13&#xb7;1% (166/1265) in patients with target organism BSI versus 6&#xb7;2% (1357/21&#x2009;845) in those with negative blood cultures, p<0&#xb7;0001. INTERPRETATION: ACORN2 has shown practical implementation of collecting linked clinical-laboratory AMR data in low-income and middle-income countries and identified a significant burden of WHO GLASS BSI. Adoption of the ACORN2 approach at scale might enhance use of diagnostic microbiology and improve the volume of clinical data included in national and global AMR surveillance datasets. FUNDING: Wellcome.

Humans

Reflecting on Fleming's caveat: the impact of stakeholder decision-making on antimicrobial resistance evolution.

Antimicrobial resistance poses one of the greatest and most imminent threats to global health, environment and food security, for which an urgent response is mandated. Evolutionary approaches to tackling the crisis tend to focus on proximate issues including the mechanisms and pathways to resistance, with associated calls to action for infection control and antimicrobial stewardship. This is of clear benefit but overlooks the fundamental influence of policy and stakeholder decision-making on resistance evolution. In 1945, Fleming issued a stark warning on the irresponsible use of penicillin and its potential to cause death due to penicillin-resistant infections. Attention to resistance evolution theory and heeding Fleming's advice could have allowed for a vastly different reality. Embedding evolutionary theory within policy, industry and regulatory bodies is not only essential but is now a race against time. Hence, critical appraisal of historical behaviour and attitudes at a global scale can inform a paradigm of anticipatory and adaptive policy. To undertake this exercise, we focused on the largest group of antibiotics with the greatest clinical and economic footprint, the beta-lactams. We examined historical case studies that affected how beta-lactams were developed, produced, approved and utilized, in order to relate stakeholder decision-making to resistance evolution. We derive lessons from these observations and propose sustainable approaches to curb resistance evolution. We set a position that actively incorporates an evolutionary theory of antimicrobial resistance into decision-making within antimicrobial development, production and stewardship.

Anti-Bacterial Agents

Whole-genome sequencing of 490,640 UK Biobank participants.

Whole-genome sequencing provides an unbiased and complete view of the human genome and enables the discovery of genetic variation without the technical limitations of other genotyping technologies. Here we report on whole-genome sequencing of 490,640 UK Biobank participants, building on previous genotyping effort1. This advance deepens our understanding of how genetics associates with disease biology and further enhances the value of this open resource for the study of human biology and health. Coupling this dataset with rich phenotypic data, we surveyed within- and cross-ancestry genomic associations and identified novel genetic and clinical insights. Although most associations with disease traits were primarily observed in individuals of European ancestries, strong or novel signals were also identified in individuals of African and Asian ancestries. With the improved ability to accurately genotype structural variants and exonic variation in both coding and UTR sequences, we strengthened and revealed novel insights relative to whole-exome sequencing2,3 analyses. This dataset, representing a large collection of whole-genome sequencing&#xa0;data that is available to the UK Biobank research community, will enable advances of our understanding of the human genome, facilitate the discovery of diagnostics and&#xa0;therapeutics with higher efficacy and improved safety profile, and enable precision medicine strategies with the potential to improve global health.

Humans

Patient-reported outcomes with tarlatamab in extensive-stage small cell lung cancer after platinum-based chemotherapy: results from the phase 3 DeLLphi-304 trial.

BACKGROUND: Extensive-stage small cell lung cancer (ES-SCLC) is associated with a high symptom burden and impaired health-related quality of life (HRQoL). This prespecified analysis from the phase 3 DeLLphi-304 trial evaluated patient-reported outcomes (PROs) for tarlatamab versus standard-of-care (SoC) chemotherapy following first-line platinum-based therapy. METHODS: DeLLphi-304 is a multicenter, open-label, randomized phase 3 study in adults with ES-SCLC. PROs were assessed using validated instruments, including the EORTC QLQ-C30, EORTC QLQ-LC13, FACT-G GP5, BPI-SF, and the EQ-5D-5L visual analogue scale. Change from baseline, response rates, and time to deterioration in these PROs were analyzed. RESULTS: PRO data from all 509 patients enrolled were evaluated. Compliance with QLQ-C30 and QLQ-LC13 assessments remained above 69% through 19&#xa0;weeks. A higher proportion of patients receiving tarlatamab achieved symptom or functional improvement at 19&#xa0;weeks compared with SoC in chest pain (19% vs 10%), cough (35% vs 26%), dyspnea (22% vs 7%), physical functioning (13% vs 8%), and global health status (23% vs 15%), respectively. Tarlatamab also delayed deterioration in symptoms, physical functioning, and pain at worst relative to SoC. FACT-G GP5 results indicated that patients receiving tarlatamab were less bothered by treatment side effects over time. CONCLUSIONS: In addition to its previously reported antitumor activity, tarlatamab demonstrated clinically meaningful improvements in symptoms and HRQoL compared with SoC. These findings support a favorable benefit-risk profile of tarlatamab in patients previously treated for ES-SCLC.

Humans

Identification and characterization of non-canonical azole antifungal resistance pathways in Aspergillus fumigatus.

UNLABELLED: Human fungal infections, especially those caused by Aspergillus fumigatus, pose a significant global health threat, particularly in immunocompromised individuals. Azole antifungals are the primary treatment for this pathogen; however, the prevalence of azole-resistant A. fumigatus strains is steadily increasing. Mutations in cyp51A, which encodes an enzyme involved in ergosterol biosynthesis and the molecular target of the azoles, are well established to confer resistance in this fungal species. However, additional mechanisms governing resistance to this antifungal class remain understudied and poorly characterized, despite growing recognition of their importance in clinical resistance. In this study, we investigated the genetic basis of azole resistance in A. fumigatus isolates from clinical settings worldwide, with a particular focus on mechanisms independent of cyp51A (non-canonical). Using a combination of genomic and functional approaches, including whole-genome sequencing and transcriptomic analysis, we identified novel genetic variants and characterized population structure, advancing our understanding of the genetic diversity and evolutionary dynamics of resistance in A. fumigatus. By expanding our understanding of the complex genetic and molecular factors underlying azole resistance in this important human fungal pathogen, this research is poised to inform the development of novel antifungal strategies and contribute to global efforts to combat fungal infections. IMPORTANCE: Azole antifungals are the frontline therapy for infections caused by the opportunistic mold Aspergillus fumigatus, yet resistance to these drugs is rapidly increasing worldwide. Most studies have focused on mutations in cyp51A, the canonical target of azoles; however, a growing proportion of resistant clinical isolates lack these mutations, indicating that alternative resistance mechanisms are emerging. Here, we integrate population genomics, transcriptomics, and functional analyses across a global collection of isolates to define the architecture of cyp51-independent (non-canonical) azole resistance. We show that this resistance phenotype is strongly associated with a distinct population lineage and is driven by a highly polygenic network of metabolic, mitochondrial, and regulatory adaptations rather than single target site mutations. These isolates exhibit extensive transcriptional rewiring and metabolic remodeling under azole stress, suggesting distinct survival strategies beyond canonical resistance. Our findings reveal that azole resistance in A. fumigatus can evolve through diverse evolutionary routes and emphasize the need to monitor and therapeutically target non-canonical pathways that may increasingly contribute to antifungal treatment failure.

Aspergillus fumigatus

Global genomic and antimicrobial resistance profiling of Neisseria gonorrhoeae: Insights from whole genome sequencing and minimum inhibitory concentration analysis.

BACKGROUND: The rising antimicrobial resistance (AMR) of Neisseria gonorrhoeae is a major global health concern that limits treatment options and complicates disease management. Efflux pump systems and resistance genes are key to bacteria's ability to evade antibiotics. This study examined the genetic and phenotypic resistance landscape using a large dataset of whole-genome sequences to identify key resistance mechanisms, assess efflux pump gene prevalence, and analyze regional variations in Minimum Inhibitory Concentration (MIC) values to inform treatment strategies and public health interventions. METHODS: A total of 38,585 whole-genome sequences of N. gonorrhoeae were analyzed to identify AMR determinants. This study focused on the presence and distribution of efflux pump genes (mtrC, farB, norM, and mtrA) and specific resistance genes, including tet(C) (tetracycline resistance) and aph(3')-Ia (aminoglycoside resistance). The MIC values were assessed for multiple antibiotics to evaluate resistance trends and regional variations, including penicillin, spectinomycin, zoliflodacin, gentamicin, and fluoroquinolones. RESULTS: This analysis revealed widespread resistance to multiple antibiotics. Efflux pump genes (mtrC, farB, norM, and mtrA) were found in nearly all isolates, highlighting their essential roles in resistance and adaptation. The presence of tet(C) and aph (3')-Ia varied across different Gene Presence Patterns, suggesting that regional or therapeutic factors may influence tetracycline and aminoglycoside resistance. High MIC values for penicillin were observed, likely because of blaTEM, a beta-lactamase gene responsible for beta-lactam resistance. Resistance to spectinomycin is also widespread, raising concerns about the diminishing efficacy of this antibiotic. In contrast, zoliflodacin, gentamicin, and fluoroquinolones exhibited relatively low MIC values, indicating their sustained effectiveness against N. gonorrhoeae. DISCUSSION: Efflux pump systems are key to N. gonorrhoeae resistance and adaptability. Regional MIC variations indicate that local antibiotic use shapes resistance patterns. The high resistance to penicillin and spectinomycin highlights the need for alternative treatments, whereas zoliflodacin and fluoroquinolones remain effective but require monitoring. This study emphasizes global AMR surveillance, novel therapies, and targeted antimicrobial stewardship to address multidrug-resistant infections.

Neisseria gonorrhoeae

Molecular characterization of colistin resistance in carbapenem-resistant Klebsiella pneumoniae from a tertiary hospital in China.

Colistin resistance in carbapenem-resistant Klebsiella pneumoniae (CRKP) poses a significant global health challenge, as colistin remains the last-resort antibiotic for treating multidrug-resistant K. pneumoniae infections. This study aimed to investigate the prevalence and molecular mechanisms underlying colistin resistance in CRKP (Colr-CRKP) isolates in Henan, China, from 2021 to 2024. The minimum inhibitory concentrations of colistin for 134 K. pneumoniae isolates were determined using the broth microdilution method. Whole-genome sequencing was performed using the Illumina platform to identify carbapenemase genes and sequence types (STs). Colistin resistance mechanisms were investigated, including mutations in two-component systems (pmrA/pmrB, phoP/phoQ), inactivation of the mgrB gene, and the presence of plasmid-mediated mcr genes. Most isolates were collected from intensive care units (99/134, 73.9%), with 48.5% (59/134) of patients having no documented colistin exposure history. Notably, ST11 was the predominant sequence type among Colr-CRKP isolates (113/134, 84.3%), all of which carried blaKPC-2 as the sole carbapenemase determinant. In contrast, seven non-carbapenemase-producing isolates exhibited phenotypic resistance to carbapenems. Genomic analysis revealed inactivation or loss of the mgrB gene in 53.7% (72/134) of isolates, predominantly due to insertion mutations (54/72). Although 32.8% (44/134) of isolates carried mutations in two-component systems, these alterations did not exhibit pathway-specific clustering. Intriguingly, plasmid-mediated mcr genes were detected in only 1.5% (2/134) of cases (mcr-8.2 and mcr-1.1), while 22.4% (30/134) of colistin-resistant strains lacked identifiable resistance determinants based on current detection methods. Our findings indicate that disruption of the mgrB gene is the primary mechanism of colistin resistance in ST11 CRKP clones. The emergence of resistance in 48.5% of patients without prior colistin exposure, combined with low mcr gene prevalence (1.5%) and unexplained resistance in 22.4% of isolates, suggests complex selective pressures beyond direct antimicrobial use. These findings underscore the urgent need for strengthened antimicrobial stewardship and the development of alternative therapeutic strategies to combat this high-risk pathogen.IMPORTANCEThe global rise of colistin-resistant Klebsiella pneumoniae, particularly in carbapenem-resistant Klebsiella pneumoniae (CRKP) strains, has severely restricted treatment options for multidrug-resistant infections. Our study provides the first comprehensive molecular characterization of colistin resistance in CRKP in a large tertiary hospital in central China. We identified mgrB disruption as the predominant resistance mechanism, while plasmid-mediated mcr genes were rare. Notably, nearly half of the resistant isolates occurred in patients without prior colistin exposure, suggesting alternative selective pressures driving resistance. These findings highlight the complex dynamics of colistin resistance in CRKP and underscore the need for enhanced genomic surveillance and stewardship interventions to limit further dissemination.

Colistin

Widespread Molecular Imprints in the Serum Proteome of COVID-19 Convalescents Uncovering Immune System Sequelae.

Post-COVID-19 sequelae have become an emerging global health issue, but the mechanisms for the sustained susceptibility of convalescents to the sequelae remain poorly understood. Here we report the use of a restricted open-search approach to explore the molecular imprints of SARS-CoV-2 infection left on the proteome of 412 COVID-19 patients and convalescences. A total of 827 non-standard amino acid variations, chemically modified residues as well as post-translational modifications, termed non-coded amino acids (ncAAs), are found spreading over 29,814 sites in patient's serum proteins. Markedly, widespread ncAAs are induced and sustainedly imprinted on the serum proteome predominately perturbing the immunoglobulin-mediated immune response, complement activation and coagulation regulation even 12 months after recovery. Sustained amino acid variations and chemical modifications are found in the complementary&#x2011;determining regions (CDRs) of the variable region of immunoglobulin contributing to the interactions between the emerging antibody and antigens; durable chemical amino acid modifications found in the hyper ncAA-modified regions of the constant region of immunoglobulin important for the interaction with the complement and regulatory receptors. In the complement system, inducible ncAAs are memorized in the components essential for the complement activation, amplification cascades and membrane attack processes. Thus, the workflow described in this study can be used to identify the molecular imprints of viral infection at the proteomic scale, particularly the specific antibodies and the immune targets left in COVID-19 patients and convalescents.

Humans

Plasma Exosome Metabolomics Reveal Stage-Specific Alterations in Elderly Women With Premetabolic and Metabolic Syndrome.

BACKGROUND: Metabolic syndrome (MetS) is a chronic disorder that poses a major threat to global health. Exosomes have emerged as promising biomarkers for diagnosing and monitoring chronic diseases. However, stage-specific alterations in the exosomal metabolome during MetS development remain poorly understood. This study aimed to characterize the plasma exosomal metabolome and explore candidate exosomal biomarkers in individuals with MetS. METHODS: This study included 20 patients with MetS, 23 individuals with pre-MetS, and 45 healthy controls. Plasma exosomes were isolated and analyzed using untargeted liquid chromatography-mass spectrometry-based metabolomics. Differential metabolites were defined by a dual-threshold, that is, p&#x2009;<&#x2009;0.05 from t-test and variable importance in projection >&#x2009;1 from partial least squares discriminant analysis, with fold change indicating their expression changes. Further, we employed machine learning algorithms to predict MetS status. RESULTS: We identified 27 differential metabolites between the pre-MetS and control groups, mainly enriched in histidine metabolism and the tricarboxylic acid cycle. Of these, 12 metabolites were upregulated, and 15 were downregulated, with 1-methylhistidine and isocitrate playing central regulatory roles. Comparison between the MetS and control groups revealed 45 differentially expressed metabolites, mainly enriched in thiamine metabolism, including 13 upregulated and 32 downregulated. In the pre-MetS group, cladribine showed the highest area under the curve (AUC) (0.743, p&#x2009;<&#x2009;0.05), whereas 3-methylxanthine yielded the largest AUC (0.714, p&#x2009;<&#x2009;0.05) in the MetS group. CONCLUSION: Our study characterized stage-dependent alterations in the plasma exosome-derived metabolome in MetS and suggests that exosomal metabolomics may provide complementary molecular information on early MetS metabolic perturbations.

exosomal features

Genetic Landscape and Mitochondrial Metabolic Dysregulation in Patients Suffering From Severe Long COVID.

Long COVID represents a significant global health challenge with an unclear etiology. Alongside accumulating evidence of mitochondrial dysfunction in patients with acute SARS-CoV-2 infection, a symptomatic overlap exists between long COVID and mitochondrial disorders. However, the genetic underpinnings of mitochondrial dysfunction in long COVID have not been previously explored. We employed whole genome sequencing to analyze 13 patients with severe long COVID to identify genetic defects related to mitochondrial function. We performed extracellular bioenergetics flux analysis on peripheral blood mononuclear cells and proteomics to evaluate cellular bioenergetics and compared the results to those of healthy controls. Our investigation identified 10 variants classified as pathogenic or likely pathogenic and 83 variants of unknown significance affecting a wide range of mitochondria-associated biological functions. Bioenergetics flux analysis in peripheral blood mononuclear cells revealed an altered ATP production rate in four long COVID patients compared to healthy controls. This study presents initial evidence of a potential underlying genetic predisposition to mitochondrial dysfunction in long COVID while demonstrating altered cellular energy capacity in a subset of these patients. These findings open avenues for further research into the role of mitochondrial dysfunction and pathology in patients suffering from long COVID and may pave the way for targeted therapeutic strategies aimed at mitigating mitochondrial dysfunction.

Humans