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Õâ¸öÊÇÔÎÄÕªÒªºÍµÚÒ»¶Î£¬ÊÇ·¢±íÔÚthe plant cellÉ쵀 Recently, a large population of messenger RNA (mRNA) was shown to be able to travel between plant organs via sieve elements as a putative long-distance signalling molecule. However, a mechanistic basis by which transcripts are selected for transport has not yet been identified. Here we show that experimental mRNA mobility data in Arabidopsis can be explained by transcript abundance and half-life. This suggests that the majority of identified mobile transcripts can be accounted for by non-sequence-specific movement of mRNA from companion cells into sieve elements. Acclimation to environmental conditions is vital for plants. At the whole-plant level, this is aided by long distance signalling between organs, which is important both for plant development and defence responses (Shah and Zeier, 2013; Sparks et al., 2013). Mechanisms for long distance communication include calcium and ROS waves, action potentials, and hydraulic waves, as well as phytohormones and some small RNAs (Shah and Zeier, 2013; Sparks et al., 2013; Gilroy et al., 2014). Long-distance signalling molecules can be transported through the phloem, in enucleated cells called sieve elements. mRNA is also able to move in sieve elements, and some mobile transcripts have been shown to give rise to developmental differences at distal locations (Spiegelman et al., 2013), leading to the suggestion that mRNA could be another class of long distance signalling molecules (Westwood, 2015). ÕâÊÇÎÒ´ÖÂԵķÒ룬 ×î½üÑо¿±íÃ÷£¬´óÁ¿mRNAÄÜͨ¹ýɸ·Ö×ÓÔËËÍÔÚÖ²ÎïÆ÷¹ÙÖ®¼ä£¬²¢ÇÒ±»ÈÏΪÊÇ¿ÉÄܵÄÔ¶¾àÀëÐźŷÖ×Ó¡£È»¶ø£¬Ñ¡ÔñÓÃÓÚÔËÊäµÄת¼±¾µÄ»úÖÆÉÐδȷ¶¨¡£Í¨¹ýת¼·á¶ÈºÍ°ëË¥ÆÚ¿ÉÒÔ½âÊÍʵÑéÖÐÄâÄϽæµÄ»ùÒòÇ¨ÒÆ¡£Õâ±íÃ÷£¬»ùÒò´Ó°é°û½øÈëɸ·Ö×ӵķÇÐòÁÐÌØÒìÐÔÔ˶¯¿ÉÒÔ½âÊÍ´ó¶àÊýÈ·¶¨µÄת¼±¾Ç¨ÒÆÏÖÏó¡£ ÊÊÓ¦»·¾³Ìõ¼þ¶ÔÖ²ÎïÀ´ËµÊÇÖÁ¹ØÖØÒªµÄ¡£ÔÚÕûÖêˮƽÉÏ£¬ÊÇͨ¹ý³¤¾àÀëÐźÅÔÚ¸÷Æ÷¹ÙÖ®¼äʵÏÖ£¬Õâ¶ÔÖ²ÎïµÄÉú³¤·¢ÓýºÍ·ÀÓù·´Ó¦ÓÈÎªÖØÒª£¨Shah and Zeier, 2013; Sparks et al., 2013£©¡£³¤¾àÀëͨÐÅ»úÖÆ°üÀ¨¸ÆºÍ»îÐÔÑõ²¨£¬¶¯×÷µçλ£¬ÒºÑ¹²¨£¬ÒÔ¼°Ö²Îï¼¤ËØºÍһЩС·Ö×ÓRNA(Shah and Zeier, 2013; Sparks et al., 2013; Gilroy et al., 2014)¡£³¤¾àÀëµÄÐźŷÖ×Ó¿ÉÒÔͨ¹ýÈÍÆ¤²¿ÔËÊ䣬Ҳ¾ÍÊÇÓÉÈ¥ºËϸ°û×é³ÉµÄɸ¹Ü¡£mRNAÒ²Äܹ»ÔÚɸ¹ÜÖÐÒÆ¶¯£¬Ò»Ð©Òƶ¯×ªÂ¼±¾±»Ö¤Ã÷¿ÉÒÔÒýÆðÔ¶¶ËλÖõķ¢Õ¹²îÒì(Spiegelman et al., 2013)£¬ÕâÈÃÈËÁªÏëµ½mRNA¿ÉÄÜÊÇÁíÒ»ÖÖÔ¶¾àÀëµÄÐźŷÖ×Ó(Westwood, 2015)¡£ лл´ó¼Ò¿´ÎÒµÄÌû×Ó£¬²¢¸ø³ö±¦¹óµÄ½¨Ò飡 |
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