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Discover research articles across all indexed journals

Predicting preterm birth using machine learning methods

Scientific Reports Anna Kloska, Alicja Harmoza, Sylwester M. Kloska et al. Feb 16, 2025 DOI: 10.1038/s41598-025-89905-1

Identification of IGF2BPs-related mRNA signature for predicting the overall survival of lung adenocarcinoma

Scientific Reports Xiang Xu, Weidi Zhao, Di Peng et al. Feb 16, 2025 DOI: 10.1038/s41598-025-87874-z

Solid-liquid interface charge transfer for generation of H2O2 and energy

Nature Communications Yunhao Hu, Weifeng Yang, Yuji Ma et al. Feb 16, 2025 DOI: 10.1038/s41467-025-57082-4

A multiparametric anti-aging CRISPR screen uncovers a role for BAF in protein synthesis regulation

Nature Communications Sophia Y. Breusegem, Jack Houghton, Raquel Romero-Bueno et al. Feb 16, 2025 DOI: 10.1038/s41467-025-56916-5

Abstract Progeria syndromes are very rare, incurable premature aging conditions recapitulating most aging features. Here, we report a whole genome, multiparametric CRISPR screen, identifying 43 genes that can rescue multiple cellular phenotypes associated with progeria. We implement the screen in fibroblasts from Néstor-Guillermo Progeria Syndrome male patients, carrying a homozygous A12T mutation in BAF. The hits are enriched for genes involved in protein synthesis, protein and RNA transport and osteoclast formation and are validated in a whole-organism Caenorhabditis elegans model. We further confirm that BAF A12T can disrupt protein synthesis rate and fidelity, which could contribute to premature aging in patients. This work highlights the power of multiparametric genome-wide suppressor screens to identify genes enhancing cellular resilience in premature aging and provide insights into the biology underlying progeria-associated cellular dysfunction.

TaTCP6 is required for efficient and balanced utilization of nitrate and phosphorus in wheat

Nature Communications Bin Liu, Weiya Xu, Yanxiao Niu et al. Feb 16, 2025 DOI: 10.1038/s41467-025-57008-0

Kosmotropic aqueous processing solution for green lithium battery cathode manufacturing

Nature Communications Jung-Hui Kim, Won-Yeong Kim, Sebin Kim et al. Feb 16, 2025 DOI: 10.1038/s41467-025-56831-9

Two dimensional MoS2 accelerates mechanically controlled polymerization and remodeling of hydrogel

Nature Communications Jian Wang, Zhijun Han, Longfei Zhang et al. Feb 16, 2025 DOI: 10.1038/s41467-025-57068-2

Topological identification and interpretation for single-cell epigenetic regulation elucidation in multi-tasks using scAGDE

Nature Communications Gaoyang Hao, Yi Fan, Zhuohan Yu et al. Feb 16, 2025 DOI: 10.1038/s41467-025-57027-x

Structural insights into the in situ assembly of clustered protocadherin γB4

Nature Communications Ze Zhang, Fabao Chen, Zihan Zhang et al. Feb 16, 2025 DOI: 10.1038/s41467-025-56948-x

Abstract Clustered protocadherins (cPcdhs) belong to the cadherin superfamily and play important roles in neural development. cPcdhs mediate homophilic adhesion and lead to self-avoidance and tiling by giving neurons specific identities in vertebrates. Structures and functions of cPcdhs have been studied extensively in past decades, but the mechanisms behind have not been fully understood. Here we investigate the in situ assembly of cPcdh-γB4, a member in the γ subfamily of cPcdhs, by electron tomography and find that the full length cPcdh-γB4 does not show regular organization at the adhesion interfaces. By contrast, cPcdh-γB4 lacking the intracellular domain can generate an ordered zigzag pattern between cells and the cis-interacting mode is different from the crystal packing of the ectodomain. We also identify the residues on the ectodomain that might be important for the zigzag pattern formation by mutagenesis. Furthermore, truncation mutants of the intracellular domain reveal different assembly patterns between cell membranes, suggesting that the intracellular domain plays a crucial role in the intermembrane organization of cPcdh-γB4. Taken together, these results suggest that both ectodomain and intracellular domain regulate the in situ assembly of cPcdh-γB4 for homophilic cell adhesion, thereby providing mechanistic insights into the functional roles of cPcdhs during neuronal wiring.

Anoctamin-1 is a core component of a mechanosensory anion channel complex in C. elegans

Nature Communications Wenjuan Zou, Yuedan Fan, Jia Liu et al. Feb 16, 2025 DOI: 10.1038/s41467-025-56938-z

Abstract Mechanotransduction channels are widely expressed in both vertebrates and invertebrates, mediating various physiological processes such as touch, hearing and blood-pressure sensing. While previously known mechanotransduction channels in metazoans are primarily cation-selective, we identified Anoctamin-1 (ANOH-1), the C. elegans homolog of mammalian calcium-activated chloride channel ANO1/TMEM16A, as an essential component of a mechanosensory channel complex that contributes to the nose touch mechanosensation in C. elegans. Ectopic expression of either C. elegans or human Anoctamin-1 confers mechanosensitivity to touch-insensitive neurons, suggesting a cell-autonomous role of ANOH-1/ANO1 in mechanotransduction. Additionally, we demonstrated that the mechanosensory function of ANOH-1/ANO1 relies on CIB (calcium- and integrin- binding) proteins. Thus, our results reveal an evolutionarily conserved chloride channel involved in mechanosensory transduction in metazoans, highlighting the importance of anion channels in mechanosensory processes.

SRBD1 facilitates chromosome segregation by promoting topoisomerase IIα localization to mitotic chromosomes

Nature Communications Courtney A. Lovejoy, Sarah R. Wessel, Rahul Bhowmick et al. Feb 16, 2025 DOI: 10.1038/s41467-025-56911-w

Abstract Accurate sister chromatid segregation requires remodeling chromosome architecture, decatenation, and attachment to the mitotic spindle. Some of these events are initiated during S-phase, but they accelerate and conclude during mitosis. Here we describe SRBD1 as a histone and nucleic acid binding protein that prevents DNA damage in interphase cells, localizes to nascent DNA during replication and the chromosome scaffold in mitosis, and is required for chromosome segregation. SRBD1 inactivation causes micronuclei, chromatin bridges, and cell death. Inactivating SRBD1 immediately prior to mitotic entry causes anaphase failure, with a reduction in topoisomerase IIα localization to mitotic chromosomes and defects in properly condensing and decatenating chromosomes. In contrast, SRBD1 is not required to complete cell division after chromosomes are condensed. Strikingly, depleting condensin II reduces the severity of the anaphase defects in SRBD1-deficient cells by restoring topoisomerase IIα localization. Thus, SRBD1 is an essential genome maintenance protein required for mitotic chromosome organization and segregation.

Melanocortin 3 receptor regulates hepatic autophagy and systemic adiposity

Nature Communications Tushar P. Patel, Joo Yun Jun, Arnold Y. Seo et al. Feb 16, 2025 DOI: 10.1038/s41467-025-56936-1

Abstract Systemic lipid homeostasis requires hepatic autophagy, a major cellular program for intracellular fat recycling. Here, we find melanocortin 3 receptor (MC3R) regulates hepatic autophagy in addition to its previously established CNS role in systemic energy partitioning and puberty. Mice with Mc3r deficiency develop obesity with hepatic triglyceride accumulation and disrupted hepatocellular autophagosome turnover. Mice with partially inactive human MC3R due to obesogenic variants demonstrate similar hepatic autophagic dysfunction. In vitro and in vivo activation of hepatic MC3R upregulates autophagy through LC3II activation, TFEB cytoplasmic-to-nuclear translocation, and subsequent downstream gene activation. MC3R-deficient hepatocytes had blunted autophagosome-lysosome docking and lipid droplet clearance. Finally, the liver-specific rescue of Mc3r was sufficient to restore hepatocellular autophagy, improve hepatocyte mitochondrial function and systemic energy expenditures, reduce adipose tissue lipid accumulation, and partially restore body weight in both male and female mice. We thus report a role for MC3R in regulating hepatic autophagy and systemic adiposity.

Bioactive nanomotor enabling efficient intestinal barrier penetration for colorectal cancer therapy

Nature Communications Zhi-Hao Wang, Xuejiao Zeng, Wanting Huang et al. Feb 16, 2025 DOI: 10.1038/s41467-025-57045-9

Targeting ELOVL6 to disrupt c-MYC driven lipid metabolism in pancreatic cancer enhances chemosensitivity

Nature Communications Ana García García, María Ferrer Aporta, Germán Vallejo Palma et al. Feb 16, 2025 DOI: 10.1038/s41467-025-56894-8

Identification and characterization of cell niches in tissue from spatial omics data at single-cell resolution

Nature Communications Jingyang Qian, Xin Shao, Hudong Bao et al. Feb 16, 2025 DOI: 10.1038/s41467-025-57029-9

Structure of an F-type phage tail-like bacteriocin from Listeria monocytogenes

Nature Communications Zhiwei Gu, Xiaofei Ge, Jiawei Wang Feb 16, 2025 DOI: 10.1038/s41467-025-57075-3

Rhizobacteria protective hydrogel to promote plant growth and adaption to acidic soil

Nature Communications Qirui Feng, Yu Luo, Mu Liang et al. Feb 16, 2025 DOI: 10.1038/s41467-025-56988-3

Digital aberration correction for enhanced thick tissue imaging exploiting aberration matrix and tilt-tilt correlation from the optical memory effect

Nature Communications ChulMin Oh, Herve Hugonnet, Moosung Lee et al. Feb 16, 2025 DOI: 10.1038/s41467-025-56865-z

Abstract Optical aberrations significantly impair microscopic image quality across various domains, including cell biology and histopathology diagnostics. Traditional adaptive optics techniques, such as wavefront shaping and guide star utilization, face challenges, especially in imaging biological tissues. Here, we introduce a computational adaptive optics approach tailored for optically thick samples. Utilizing the tilt-tilt correlation from the optical memory effect, our method detects phase differences in aberrations caused by small tilts in the incident waves. Experimental validation demonstrates our technique’s capacity to enhance imaging of thick human tissues under substantial aberration conditions using a transmission-mode holotomography setup. Remarkably, our approach works robustly against sample movement, which is essential for enhanced imaging accuracy in critical biomedical applications.

The anti-distortive polaron as an alternative mechanism for lattice-mediated charge trapping

Nature Communications Hamideh Hassani, Eric Bousquet, Xu He et al. Feb 16, 2025 DOI: 10.1038/s41467-025-56791-0

Genetic regulation of TERT splicing affects cancer risk by altering cellular longevity and replicative potential

Nature Communications Oscar Florez-Vargas, Michelle Ho, Maxwell H. Hogshead et al. Feb 16, 2025 DOI: 10.1038/s41467-025-56947-y

Abstract The chromosome 5p15.33 region, which encodes telomerase reverse transcriptase (TERT), harbors multiple germline variants identified by genome-wide association studies (GWAS) as risk for some cancers but protective for others. Here, we characterize a variable number tandem repeat within TERT intron 6, VNTR6-1 (38-bp repeat unit), and detect a strong link between VNTR6-1 alleles (Short: 24-27 repeats, Long: 40.5-66.5 repeats) and GWAS signals rs2242652 and rs10069690 within TERT intron 4. Bioinformatics analyses reveal that rs10069690-T allele increases intron 4 retention while VNTR6-1-Long allele expands a polymorphic G-quadruplex (G4, 35-113 copies) within intron 6, with both variants contributing to variable TERT expression through alternative splicing and nonsense-mediated decay. In two cell lines, CRISPR/Cas9 deletion of VNTR6-1 increases the ratio of TERT-full-length (FL) to the alternative TERT-β isoform, promoting apoptosis and reducing cell proliferation. In contrast, treatment with G4-stabilizing ligands shifts splicing from TERT-FL to TERT-β isoform, implicating VNTR6-1 as a splicing switch. We associate the functional variants VNTR6-1, rs10069690, and their haplotypes with multi-cancer risk and age-related telomere shortening. By regulating TERT splicing, these variants may contribute to fine-tuning cellular longevity and replicative potential in the context of stress due to tissue-specific endogenous and exogenous exposures, thereby influencing the cancer risk conferred by this locus.