Bin He, Wenjun He, Boyang Wu, Yuhui Wang, Zhi Geng, Xiaotong Jiang, Zhengrong Jiang, Weiwei Li, Yanfeng Ding, Zhenghui Liu, Ganghua Li
Light intensity critically determines rice seedling growth and yield, yet the stage-specific photoacclimation mechanisms and optimal light regimes remain unclear. We investigated optimal light intensity combinations across developmental stages to enhance seedling quality, post-transplant growth, and yield. Two experiments were conducted: Experiment 1 applied seven light combinations (0-300, 100-300, 300-300, 700-300, 300-0, 300-100, 300-700 μmol m-2 s-1) during 0-1 and 1-3 leaf ages, while Experiment 2 independently tested five intensities (100, 300, 500, 700, 900 μmol m-2 s-1) across 0-1, 1-2, and 2-3 leaf ages. Seedlings under moderate light (300-300) during the 0-1 leaf age showed 25.7% higher shoot dry matter and 14.6% higher soluble sugar content at three-leaf stage compared to 700 μmol m-2 s-1 (700-300). 700 and 900 μmol m-2 s-1 during this initial phase induced malondialdehyde (MDA) and H2O2 accumulation, coupled with a dysfunctional antioxidant system, triggering oxidative damage and chlorophyll degradation. During 1-3 leaf age, dry matter, soluble sugar and starch contents increased with light intensity. High-quality seedlings with elevated non-structural carbohydrate reserves provided the energy and material substrates for tiller initiation, thereby promoting post-transplant tillering and increasing grain yield by enhancing the number of effective panicles. Our findings reveal stage-dependent photoacclimation mechanisms: oxidative protection (0-1 leaf age) transitioning to productivity enhancement (1-3 leaf age). Optimal light intensity management was 300 μmol m-2 s-1 during initial establishment to avoid oxidative stress, followed by a progressive increase thereafter. These results provide a quantifiable benchmark for precise light management in industrial rice nurseries to maximize yield potential.