bioRxiv Science⌕ Search

Biology subjects

Vittozzi, Y.

Publications and source records attributed to Vittozzi, Y..

2 recordsLinked to original sources

Antagonistic and Synergistic Roles of Tomato AFP3 Isoforms in Hormonal Regulation and Development

The ABA INSENSITIVE5 BINDING PROTEIN (AFP) family plays a critical role in abscisic acid (ABA) signaling through interaction with the transcription factor ABI5, impacting seed germination and stress responses. Here, we characterize tomato AFP3, which produces two isoforms: a full-length protein and a shorter microProtein (sAFP3) containing only the C-terminal domain. Functional analyses reveal contrasting roles of these isoforms in development; while AFP3 overexpression accelerates shoot growth but impairs seed germination, both afp3 loss-of-function and sAFP3-expressing mutants (afp3-D) exhibit stunted growth and developmental defects. Transcriptome profiling highlights that AFP3 and sAFP3 differentially regulate hormone-related pathways, including salicylic acid, gibberellic acid, and jasmonic acid metabolism. Proteomic interaction studies demonstrate that AFP3 and sAFP3 physically interact, sharing partners involved in hormone signaling. Hormone quantification confirms that AFP3 modulates multiple phytohormones, with elevated ABA in afp3-D mutants and increased gibberellic acid, jasmonic acid, and salicylic acid in both afp3 and afp3-D mutant backgrounds. Moreover, AFP3 controls flower and fruit development, influencing yield and ripening. Together, these findings identify AFP3 as a key integrator of hormonal crosstalk that coordinates growth, development, and stress responses in tomato. The production of dual AFP3 isoforms through alternative transcription, combined with microProtein-mediated dominant-negative regulation, reveals a sophisticated mechanism for dynamically fine-tuning transcriptional networks. This versatile strategy underscores how plants--and potentially other organisms--achieve precise control over complex signaling pathways.

plant biology↗

A shade-responsive microProtein in the Arabidopsis ATHB2 gene regulates elongation growth and root development

Shade triggers widespread changes in transcript isoform production in Arabidopsis thaliana. Using 5' PEAT sequencing, we identified 377 candidate microprotein-encoding transcripts arising from alternative transcription start sites, including one located within the third exon of ATHB2, a class II HD-ZIP transcription factor central to shade avoidance. The encoded microprotein, ATHB2miP, lacks the DNA-binding homeodomain but retains the leucine zipper domain, through which it forms heterodimers with full-length ATHB2, inhibits its DNA-binding activity, and disrupts its localization to nuclear photobodies. Ectopic expression of ATHB2miP phenocopies loss of ATHB2, deregulating genes involved in auxin signaling, root development, and iron homeostasis. Complementation of the athb2 mutant with a construct carrying a silent mutation at the ATHB2miP start codon results in exaggerated hypocotyl elongation under both white light and shade, demonstrating that ATHB2miP is required to restrain excessive elongation growth. Immunoprecipitation mass spectrometry confirmed that this mutation redirects translation to alternative initiation sites, producing distinct proteoforms absent from wild-type plants. Additionally, ATHB2 suppresses iron uptake genes, and iron availability modulates shade growth responses in an ATHB2-dependent manner. Together, these findings establish ATHB2miP as a regulator of an ATHB2 feedback circuit that integrates light and nutritional signals to coordinate shoot elongation and root development.

plant biology↗