谷氨酰胺分解代谢支持氨基酸生物合成并抑制整合应激反应以促进光感受器存活。
Glutamine catabolism supports amino acid biosynthesis and suppresses the integrated stress response to promote photoreceptor survival.
作者信息
Goswami Moloy T, Weh Eric, Subramanya Shubha, Weh Katherine M, Durumutla Hima Bindu, Hager Heather, Miller Nicholas, Chaudhury Sraboni, Andren Anthony, Sajjakulnukit Peter, Zhang Li, Besirli Cagri, Lyssiotis Costas A, Wubben Thomas J
机构信息
Department of Ophthalmology and Visual Sciences, University of Michigan, Ann Arbor, United States.
Molecular and Developmental Biology Graduate Program, Cincinnati Children's Hospital Medical Center, Cincinnati, United States.
出版信息
Elife. 2025 May 21;13:RP100747. doi: 10.7554/eLife.100747.
Photoreceptor loss results in vision loss in many blinding diseases, and metabolic dysfunction underlies photoreceptor degeneration. So, exploiting photoreceptor metabolism is an attractive strategy to prevent vision loss. Yet, the metabolic pathways that maintain photoreceptor health remain largely unknown. Here, we investigated the dependence of photoreceptors on glutamine (Gln) catabolism. Gln is converted to glutamate via glutaminase (GLS), so mice lacking GLS in rod photoreceptors were generated to inhibit Gln catabolism. Loss of GLS produced rapid rod photoreceptor degeneration. In vivo metabolomic methodologies and metabolic supplementation identified Gln catabolism as critical for glutamate and aspartate biosynthesis. Concordant with this amino acid deprivation, the integrated stress response (ISR) was activated with protein synthesis attenuation, and inhibiting the ISR delayed photoreceptor loss. Furthermore, supplementing asparagine, which is synthesized from aspartate, delayed photoreceptor degeneration. Hence, Gln catabolism is integral to photoreceptor health, and these data reveal a novel metabolic axis in these metabolically demanding neurons.
在许多致盲性疾病中,光感受器的丧失会导致视力丧失,而代谢功能障碍是光感受器退化的基础。因此,利用光感受器代谢是预防视力丧失的一种有吸引力的策略。然而,维持光感受器健康的代谢途径在很大程度上仍然未知。在这里,我们研究了光感受器对谷氨酰胺(Gln)分解代谢的依赖性。Gln通过谷氨酰胺酶(GLS)转化为谷氨酸,因此我们培育了在视杆光感受器中缺乏GLS的小鼠,以抑制Gln分解代谢。GLS的缺失导致视杆光感受器迅速退化。体内代谢组学方法和代谢补充实验确定Gln分解代谢对谷氨酸和天冬氨酸的生物合成至关重要。与这种氨基酸缺乏相一致,整合应激反应(ISR)被激活,蛋白质合成减弱,抑制ISR可延缓光感受器丧失。此外,补充由天冬氨酸合成的天冬酰胺可延缓光感受器退化。因此,Gln分解代谢对光感受器健康至关重要,这些数据揭示了这些对代谢要求较高的神经元中的一种新的代谢轴。