Results 201 to 210 of about 72,341 (282)

Chromosome‐Scale Haplotype Genome Assemblies for the Australian Mango ‘Kensington Pride’ and a Wild Relative, Mangifera laurina, Provide Insights Into Anthracnose‐Resistance and Volatile Compound Biosynthesis Genes

open access: yesPlant Biotechnology Journal, Volume 24, Issue 5, Page 3172-3188, May 2026.
ABSTRACT Mango (Mangifera indica) is one of the most popular fruits cultivated in tropical and subtropical regions of the world. The availability of reference genomes helps to identify the genetic basis of important traits. Here, we report assembled high‐quality chromosome‐level genomes for the Australian mango cultivar ‘Kensington Pride’ and M ...
Upendra Kumari Wijesundara   +5 more
wiley   +1 more source

The MdERF17–MdbHLH149 Module Mediates Ethylene‐Induced Starch Degradation Through the Transcriptional Repression of α‐Amylase MdAMY1 in Apple

open access: yesPlant Biotechnology Journal, Volume 24, Issue 5, Page 3141-3157, May 2026.
ABSTRACT The ripening of climacteric fruits is characterised by a sharp increase in ethylene production, coinciding with the conversion of starch into soluble sugars. However, the regulatory interplay between ethylene and starch degradation in apple remains largely unclear. Here, we report a negative correlation between starch accumulation and ethylene
Fan Xiao   +8 more
wiley   +1 more source

GWAS identifies regulators of seed and leaf morphology in common bean, revealing OFP5 as a major seed size determinant

open access: yesThe Plant Journal, Volume 126, Issue 3, May 2026.
Significance Statement Seed and leaf phenomic traits, including morphology and spectral features, play key roles in consumer preference and plant performance. Here, we conducted a genome‐wide association study of 71 phenomic traits, identifying 73 high‐confidence quantitative trait locus and 114 candidate genes.
Julia von Steimker   +14 more
wiley   +1 more source

HDAC3 Regulates Transcriptional Networks Governing Decidualization

open access: yesThe FASEB Journal, Volume 40, Issue 8, 30 April 2026.
HDAC3 orchestrates transcriptional programs essential for uterine decidualization. Loss of HDAC3 disrupts cytoskeletal organization, metabolic signaling, and oxidative stress responses, impairing stromal cell differentiation and decidualization. These alterations compromise uterine receptivity and result in failed embryo implantation.
Loan Thi Kim Nguyen   +5 more
wiley   +1 more source

Home - About - Disclaimer - Privacy