» Articles » PMID: 37789484

Leaf Senescence: Progression, Regulation, and Application

Overview
Journal Mol Hortic
Date 2023 Oct 3
PMID 37789484
Authors
Affiliations
Soon will be listed here.
Abstract

Leaf senescence, the last stage of leaf development, is a type of postmitotic senescence and is characterized by the functional transition from nutrient assimilation to nutrient remobilization which is essential for plants' fitness. The initiation and progression of leaf senescence are regulated by a variety of internal and external factors such as age, phytohormones, and environmental stresses. Significant breakthroughs in dissecting the molecular mechanisms underpinning leaf senescence have benefited from the identification of senescence-altered mutants through forward genetic screening and functional assessment of hundreds of senescence-associated genes (SAGs) via reverse genetic research in model plant Arabidopsis thaliana as well as in crop plants. Leaf senescence involves highly complex genetic programs that are tightly tuned by multiple layers of regulation, including chromatin and transcription regulation, post-transcriptional, translational and post-translational regulation. Due to the significant impact of leaf senescence on photosynthesis, nutrient remobilization, stress responses, and productivity, much effort has been made in devising strategies based on known senescence regulatory mechanisms to manipulate the initiation and progression of leaf senescence, aiming for higher yield, better quality, or improved horticultural performance in crop plants. This review aims to provide an overview of leaf senescence and discuss recent advances in multi-dimensional regulation of leaf senescence from genetic and molecular network perspectives. We also put forward the key issues that need to be addressed, including the nature of leaf age, functional stay-green trait, coordination between different regulatory pathways, source-sink relationship and nutrient remobilization, as well as translational researches on leaf senescence.

Citing Articles

NAC047/052/104 Synergistically Regulate the Dark-Induced Leaf Senescence in Non-Heading Chinese Cabbage.

Yang B, Zhang D, Meng Z, Yin Y, Yang X, Cao M Int J Mol Sci. 2025; 26(5).

PMID: 40076959 PMC: 11900949. DOI: 10.3390/ijms26052340.


Multifunctional Role of Cytokinin in Horticultural Crops.

Hussain S, Chang J, Li J, Chen L, Ahmad S, Song Z Int J Mol Sci. 2025; 26(3).

PMID: 39940806 PMC: 11816932. DOI: 10.3390/ijms26031037.


Efficient genome editing in dicot plants using calreticulin promoter-driven CRISPR/Cas system.

Li B, Shang Y, Wang L, Lv J, Wu Q, Wang F Mol Hortic. 2025; 5(1):9.

PMID: 39893465 PMC: 11787731. DOI: 10.1186/s43897-024-00128-w.


Functional and genomic analyses of plant growth promoting traits in Priestia aryabhattai and Paenibacillus sp. isolates from tomato rhizosphere.

Almiron C, Petitti T, Ponso M, Romero A, Areco V, Bianco M Sci Rep. 2025; 15(1):3498.

PMID: 39875501 PMC: 11775226. DOI: 10.1038/s41598-025-87390-0.


Circadian clock regulation in soybean senescence: a transcriptome analysis of early and late senescence types.

Basnet P, Lee S, Moon K, Park N, Lee G, Lee S BMC Genomics. 2025; 26(1):56.

PMID: 39838316 PMC: 11748321. DOI: 10.1186/s12864-024-11095-3.


References
1.
Borrill P, Fahy B, Smith A, Uauy C . Wheat Grain Filling Is Limited by Grain Filling Capacity rather than the Duration of Flag Leaf Photosynthesis: A Case Study Using NAM RNAi Plants. PLoS One. 2015; 10(8):e0134947. PMC: 4524614. DOI: 10.1371/journal.pone.0134947. View

2.
Ren G, An K, Liao Y, Zhou X, Cao Y, Zhao H . Identification of a novel chloroplast protein AtNYE1 regulating chlorophyll degradation during leaf senescence in Arabidopsis. Plant Physiol. 2007; 144(3):1429-41. PMC: 1914121. DOI: 10.1104/pp.107.100172. View

3.
Miao Y, Zentgraf U . The antagonist function of Arabidopsis WRKY53 and ESR/ESP in leaf senescence is modulated by the jasmonic and salicylic acid equilibrium. Plant Cell. 2007; 19(3):819-30. PMC: 1867371. DOI: 10.1105/tpc.106.042705. View

4.
Guo Y . Towards systems biological understanding of leaf senescence. Plant Mol Biol. 2012; 82(6):519-28. DOI: 10.1007/s11103-012-9974-2. View

5.
Wagner R, Aigner H, Pruzinska A, Johansson Jankanpaa H, Jansson S, Funk C . Fitness analyses of Arabidopsis thaliana mutants depleted of FtsH metalloproteases and characterization of three FtsH6 deletion mutants exposed to high light stress, senescence and chilling. New Phytol. 2011; 191(2):449-458. DOI: 10.1111/j.1469-8137.2011.03684.x. View