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Small, I. D.

Publications and source records attributed to Small, I. D..

4 recordsLinked to original sources

A role for chloroplast RNA binding protein CP29A in rbcL expression during cold acclimation

The chloroplast genome encodes key components of the photosynthetic light reaction machinery as well as the large subunit of the enzyme central for carbon fixation, RuBisCo. Its expression is predominantly regulated post-transcriptionally, with nuclear-encoded RNA binding proteins (RBPs) playing a key role. Mutants of chloroplast gene expression factors often exhibit impaired chloroplast biogenesis, especially in cold conditions. Low temperatures pose a challenge for plants as this leads to electron imbalances and oxidative damage. A well-known response of plants to this problem is to increase the production of RuBisCo and other Calvin Cycle enzymes in the cold, but how this is achieved is unclear. The chloroplast RBP CP29A has been shown to be essential for cold resistance in growing leaf tissue of Arabidopsis thaliana. Here, we examined CP29A-RNA interaction sites at nucleotide resolution. We discovered that CP29A preferentially binds to the 5-UTR of rbcL, downstream of the binding site of the pentatricopeptide repeat (PPR) protein MRL1. MRL1 is an RBP known to be necessary for the accumulation of rbcL. In Arabidopsis mutants lacking CP29A, we were unable to observe significant effects on rbcL, possibly due to CP29As restricted role in a limited number of cells at the base of leaves. In contrast, CRISPR/Cas9-induced mutants of tobacco NtCP29A exhibit cold-dependent photosynthetic deficiencies throughout the entire leaf blade. This is associated with a parallel reduction in rbcL mRNA and RbcL protein accumulation. Our work unravels the molecular player behind cold acclimation of the photosynthetic dark reaction. Significance StatementThis study unveils the critical role of CP29A, a chloroplast-localized RNA binding protein, in facilitating plants acclimation to cold environments. Through advanced molecular techniques, we discovered that CP29A specifically targets the rbcL mRNA, vital for the production of RuBisCo--a key enzyme in photosynthesis and the most abundant protein on Earth. Our findings elucidate a previously unknown mechanism of how plants adjust to cold stress by regulating RuBisCo levels, highlighting the intricate interplay between nuclear and chloroplast genomes. This research not only advances our understanding of plant cold acclimation but also provides insights that could help enhance plant resilience and productivity when facing temperature challenges.

plant biology↗

A unique C-terminal domain contributes to the molecular function of restorer-of-fertility proteins in plant mitochondria

Restorer-of-fertility (Rf) genes have practical applications in hybrid seed production as a means to control self-pollination. They encode pentatricopeptide repeat (PPR) proteins that are targeted to mitochondria where they specifically bind to transcripts that induce cytoplasmic male sterility and repress their expression. In searching for a molecular signature unique to this class of proteins, we found that a majority of known Rf proteins have a unique domain, which we called RfCTD (Restorer-of-fertility C-terminal domain), and its presence correlates with the ability to induce cleavage of the mitochondrial RNA target. We constructed a sequence profile that can quickly and accurately identify RfCTD sequences in plant genomes or transcriptomes. We screened 219 angiosperm genomes from 123 genera and found that each diploid genome encodes, on average, 25 Rf-like (RFL) proteins, of which approximately 55% contain the C-terminal signature domain. This screen also revealed considerable variation in RFL gene numbers across flowering plants. We observed that plant genera with bisexual flowers have significantly higher numbers of RFL genes compared to those with unisexual flowers, consistent with a role of these proteins in restoration of male fertility. Finally, we show that removing the RfCTD from the RFL protein RNA PROCESSING FACTOR 2-nad6 prevented cleavage of its RNA target, the nad6 transcript, in Arabidopsis thaliana mitochondria. This research provides a simple way of identifying putative Rf candidates in genome sequences, new insights into the molecular mode of action of Rf proteins in plant mitochondria and expands our understanding of the evolution of fertility restoration in flowering plants.

plant biology↗

MSP1 encodes an essential RNA-binding PPR factor required for nad1 maturation and complex I biogenesis in Arabidopsis mitochondria

SummaryMitochondria are semi-autonomous organelles that serve as hubs for aerobic energy metabolism. The biogenesis of the respiratory (OXPHOS) system relies on nuclear-encoded factors, which regulate the transcription, processing and translation of mitochondrial (mt)RNAs. These include proteins of primordial origin, as well as eukaryotic-type RNA-binding families recruited from the host genomes to function in mitogenome expression. Pentatricopeptide repeat (PPR) proteins constitute a major gene-family in angiosperms that is pivotal in many aspects of mtRNA metabolism, such as editing, splicing or stability. Here, we report the analysis of MITOCHONDRIA STABILITY/PROCESSING PPR FACTOR1 (MSP1, At4g20090), a canonical mitochondria-localized PPR protein that is necessary for mitochondrial biogenesis and embryo-development. Functional complementation confirmed that the phenotypes result from a disruption of the MSP1 gene. As a loss-of-function allele of Arabidopsis MSP1 leads to seed abortion, we employed an embryo-rescue method for the molecular characterization of msp1 mutants. Our data show that msp1 embryo-development fails to proceed beyond the heart-torpedo transition stage as a consequence of a severe nad1 pre-RNA processing-defect, resulting in the loss of respiratory complex I (CI) activity. The maturation of nad1 involves the processing of three RNA-fragments, nad1.1, nad1.2 and nad1.3. Based on biochemical analyses and the mtRNA profiles in wild-type and msp1 plants, we concluded that through its association with a specific site in nad1.1, MSP1 facilitates the generation of its 3-terminus and stabilizes it -a prerequisite for nad1 exons a-b splicing. Our data substantiate the importance of mtRNA metabolism for the biogenesis of the respiratory machinery during early-plant development.

plant biology↗

Knockdown of mitochondrial atp1 mRNA by a custom-designed pentatricopeptide repeat protein alters F1Fo ATP synthase

We show that a custom-designed RNA-binding protein binds and specifically induces cleavage of atp1 RNA in mitochondria, significantly decreasing the abundance of the Atp1 protein and the assembled F1Fo ATP synthase in Arabidopsis thaliana. The transformed plants are characterized by delayed vegetative growth and reduced fertility. Five-fold depletion of Atp1 level was accompanied by a decrease in abundance of other ATP synthase subunits, lowered ATP synthesis rate of isolated mitochondria, but no change to mitochondrial electron transport chain complexes, adenylates or energy charge in planta. Transcripts for amino acid transport and a variety of stress response processes were differentially expressed in lines containing the PPR protein, indicating changes to achieve cellular homeostasis when ATP synthase was highly depleted. Leaves of ATP-synthase-depleted lines showed higher respiratory rates and elevated levels of most amino acids at night, most notably serine family amino acids. The results show the value of using custom-designed PPR proteins to influence expression of specific mitochondrial transcripts to carry out reverse genetics studies on mitochondrial gene functions and the consequences of ATP synthase depletion on cellular functions in Arabidopsis. One sentence SummaryKnockdown of mitochondrial atp1 mRNA by a custom-designed pentatricopeptide repeat protein alters F1Fo ATP synthase, plant growth and amino acid metabolism and ATP synthesis in Arabidopsis thaliana

plant biology↗