Khan Muhammad Sarwar
National Institute for Biotechnology and Genetic Engineering (NIBGE), Jhang Road, Faisalabad, Pakistan.
Trends Biotechnol. 2007 Oct;25(10):437-40. doi: 10.1016/j.tibtech.2007.08.007. Epub 2007 Sep 17.
Photosynthetic carbon metabolism is rate limiting in C3 plants because of a competing process: photorespiration. Photorespiration lowers the energy efficiency of photosynthesis by metabolizing glycolate produced by the oxygenate activity of Rubisco. The chloroplasts of Arabidopsis thaliana have recently been reported to contain a novel respiratory pathway that converts glycolate directly to glycerate and thus increases productivity by improving photosynthesis in transgenic plants. This pathway promises to widen the applicability of the approach to other C3 plants.
在C3植物中,光合碳代谢是限速过程,因为存在一个竞争过程:光呼吸。光呼吸通过代谢由核酮糖-1,5-二磷酸羧化酶加氧活性产生的乙醇酸,降低了光合作用的能量效率。最近有报道称,拟南芥的叶绿体含有一种新的呼吸途径,该途径可将乙醇酸直接转化为甘油酸,从而通过提高转基因植物的光合作用来提高生产力。这条途径有望扩大该方法在其他C3植物中的适用性。