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Son, N.

Publications and source records attributed to Son, N..

3 recordsLinked to original sources

Loss of Mitochondrial FMT Restores Chloroplast Proteostasis via Inter-organelle Compensation

Chloroplast proteostasis is vital for plant development, yet whether cells can actively reprogram organelle communication to restore plastid function when essential protease components fail remains unclear. Using a forward genetic suppressor screen in Arabidopsis, we identify loss of the mitochondria-associated protein FRIENDLY MITOCHONDRIA (FMT) as a strong suppressor of the virescent and growth-retarded clpc1 mutant, which lacks the major chloroplast Clp chaperone ClpC1. Suppression is highly specific and occurs independently of GUN1-mediated retrograde signaling. Integrated multi-omics analyses reveal that clpc1 and fmtclpc1 represent two distinct organelle signaling states. In clpc1, loss of ClpC1 triggers a plastid stress state characterized by repression of photosynthesis-associated transcription factors, induction of plastid metabolic stress markers, and impaired proteolytic activity. By contrast, loss of FMT shifts the system into a recovery state despite persistent mitochondrial clustering. Mechanistically, FMT negatively regulates CLPC2, a ClpC1 paralog, and fmt-mediated rescue results from CLPC2 derepression. Moderately elevated ClpC2 restores in vivo proteolysis, as evidenced by recovery of PAA2 substrate turnover, normalization of chloroplast ultrastructure, and reactivation of photosynthesis-related gene expression. Transcriptomic and proteomic profiling further reveal coordinated remodeling of nuclear gene expression and chloroplast protein investment in the recovery state, including reduced cytosolic folding stress and selective induction of jasmonic acid- and salicylic acid-associated signaling networks. Genetic analyses establish that REC1 and REC2 are required for full CLPC2 induction and phenotypic recovery. Together, our findings uncover a latent inter-organelle compensatory mechanism in which mitochondrial perturbation reprograms nuclear gene expression to restore chloroplast proteostasis when ClpC1 function is compromised.

plant biology↗

COmapper: High-resolution mapping of meiotic crossovers by long-read sequencing in Arabidopsis

O_LIMeiotic crossovers rearrange existing genetic variation between homologous chromosomes, profoundly affecting genomic diversity. Crossovers are typically constrained to 1-3 events per chromosome pair, and their distribution is shaped by chromatin accessibility and DNA polymorphisms. Genome-wide crossover maps can be generated in plants by high-throughput short-read sequencing or linked-read sequencing. C_LIO_LIHere, we use long-read nanopore sequencing technology to develop a crossover mapping pipeline, COmapper, for high-resolution mapping of genome-wide crossovers from pooled DNA of F1 hybrid pollen and F2 recombinant seedlings derived from a cross between Arabidopsis thaliana accessions Col and Ler. We validate the high accuracy of COmapper by applying nanopore long-read sequencing to pooled DNA of Arabidopsis F2 individuals with crossovers mapped by short-read sequencing. C_LIO_LIUsing the COmapper, we constructed high-resolution genomic maps of crossovers using F1 hybrid pollen and F2 seedlings in wild type and crossover-elevated recq4a recq4b mutant, showing results comparable to short-read sequencing. Crossovers were enriched at gene-proximal promoters in wild type and increased but reshaped by high polymorphism density in recq4a recq4b. C_LIO_LIWe propose that COmapper will be widely applicable for exploring the effects of genetic, epigenetic and environmental changes on the crossover patterns across diverse plant species. C_LI

plant biology↗

HEAT SHOCK FACTOR BINDING PROTEIN limits meiotic crossovers by repressing HEI10 transcription

The number of meiotic crossovers is tightly controlled and most depend on pro-crossover ZMM proteins, such as the E3 ligase HEI10. Despite the importance of HEI10 dosage for crossover formation, how HEI10 transcription is controlled remains unexplored. In a forward genetic screen using a sensitive fluorescent seed crossover reporter in Arabidopsis thaliana we identify heat shock factor binding protein (HSBP) as a repressor of HEI10 transcription and crossover numbers. Using genome-wide crossover mapping and cytogenetics, we show that hsbp mutations or meiotic HSBP knockdowns increase ZMM-dependent crossovers towards the telomeres, mirroring the effects of HEI10 overexpression. Through RNA sequencing, DNA methylome and chromatin immunoprecipitation analysis, we reveal that HSBP directly represses HEI10 transcription by binding with heat shock factors (HSFs) at the HEI10 promoter and maintaining DNA methylation over the HEI10 5' untranslated region. Our findings provide insights into how the temperature response regulator HSBP restricts meiotic HEI10 transcription and crossover number by attenuating HSF activity.

plant biology↗