ÀóÖ¦³É»¨ÓÕµ¼£¬Êܶà¸ö»·½ÚÒòËØµÄÓ°Ï죬°üÀ¨Î¶ȺÍÍÁÈÀË®·ÖÌõ¼þ¡£8ÔÂ25ÈÕ£¬»ªÄÏũҵ´óѧ԰ÒÕѧԺµÄÑо¿ÈËÔ±ÔÚNature×Ó¿¯¡¶Scientific Reports¡··¢±íÌâΪ¡°Integrative effect of drought and low temperature on litchi (Litchi chinensis Sonn.) floral initiation revealed by dynamic genome-wide transcriptome analysis¡±µÄÑо¿ÂÛÎÄ¡£ÕâÏîÑо¿Í¨¹ý¶¯Ì¬µÄÈ«»ùÒò×éת¼×é·ÖÎö£¬±íÃ÷¸ÉºµºÍµÍζÔÀóÖ¦»¨ÀÙÐγɾßÓÐÒ»¸ö×ۺϵÄÓ°Ïì¡£ÕâÏîÑо¿µÄͨѶ×÷ÕßÊǹú¼ÒÀóÖ¦ÁúÑÛ²úÒµ¼¼ÊõÌåϵÊ×ϯ¿ÆÑ§¼Ò¡¢»ªÄÏũҵ´óѧ԰ÒÕѧԺԺ³¤³Âºñ±ò½ÌÊÚ¡£Ïà¹ØÔĶÁ£º»ªÄÏÖ²ÎïÔ°£ºÀóÖ¦¹ûʵ˥ÀÏÊÜmiRNAµ÷¿Ø£»¿ÆÑÐÈËÔ±´ÓÀóÖ¦¹ûƤÖзÖÀë³öл¯ºÏÎï¡£

ÀóÖ¦£¨Litchi chinensis Sonn£©ÊÇ»ªÄϵØÇøµÄÒ»ÖÖ¾ßÓÐÖØÒª¾­¼ÃÒâÒåµÄ³£Â̹ûÊ÷£¬²¢ÇÒÒ²¹ã·º·Ö²¼ÓÚÑÇÈÈ´øµØÇø¡£ÀóÖ¦µÄÄê²úÁ¿Ö÷Ҫȡ¾öÓڳɹ¦µÄ»¨Ñ¿·Ö»¯£¬ÊÇÓɶà¸öÄÚÉúºÍ»·¾³ÒòËØÓ°ÏìµÄ£¬°üÀ¨Î¶ȺÍÍÁÈÀË®·ÖÌõ¼þ¡£È»¶ø£¬ÊÀ½ç·¶Î§Ä򵀮øºò±ä»¯¿ÉÄÜ»á¶Ô»¨Ñ¿·Ö»¯ºÍ»¨µÄ·¢Óý²úÉú²»ÀûÓ°Ïì¡£

µÍÎÂÔÚ´º»¯ÐÍÖ²ÎïµÄ¿ª»¨¹ý³ÌÖÐÆð×ÅÖÁ¹ØÖØÒªµÄ×÷Óã¬Ò²ÊÇÀóÖ¦»¨Ñ¿·Ö»¯Ëù±ØÐèµÄ£¬µ«ÊDz»Í¬Æ·ÖÖ¼äµÄÐèÀäÁ¿ÓÐËù²»Í¬¡£¶¬¼¾»òÔç´ºµÄµÍα©Â¶»á´Ù½øÀóÖ¦»¨Ñ¿·Ö»¯£¬µ±»·¾³Î¶ȸßÓÚ20 ¡ãCʱ¿ÉÏÔÖø½µµÍÀóÖ¦¿ª»¨¡£¶¬¼¾²»Ñ°³£µÄ¸ßλᵼÖÂÀóÖ¦»¨Ñ¿·Ö»¯µÄÀä»ýÀÛ²»×㣬´Ó¶øµ¼Ö¿ª»¨²»³ä·Ö¡£ÒÔÍùµÄÌï¼äÊÔÑé±íÃ÷£¬ÔÚÒ»¶¨³Ì¶ÈÉÏ£¬¶¬ÀäÓÕµ¼Ç°µÄ¸Éºµ£¬¿ÉÒÔͨ¹ý½µµÍÀäεÄÒªÇ󣬶ø´Ù½øÀóÖ¦µÄ¿ª»¨¡£È»¶ø£¬½ö½ö¸Éºµ´¦Àí²¢²»ÄÜÓÕµ¼ÀóÖ¦¿ª»¨¡£¾¡¹ÜÀóÖ¦³É»¨ÓÕµ¼µÄÕâÖÖ×ۺϵ÷¿ØÓÐÖØÒªµÄÅ©ÒÕѧÒâÒ壬µ«ÊÇÕâÖÖÏ໥×÷ÓõķÖ×Ó»ù´¡£¬Ò»Ö±ÏÊΪÈËÖª¡£

Ë÷È¡ÉϺ£ÉúÎïоƬ¹ú¼Ò¹¤³ÌÑо¿ÖÐÐĵÄת¼×é²âÐòÓë·ÖÎö·þÎñµÄÏêϸ¼¼Êõ×ÊÁÏÇëÌîдÁªÏµ·½Ê½

´º»¯·´Ó¦±³ºóµÄÒÅ´«Ñ§»úÖÆÒѾ­ÔÚģʽֲÎïÄâÄϽæÖеÃÒÔÑо¿¡£ÔÚÄâÄϽæÖУ¬FLOWERING LOCUS T£¨FT£©±àÂëÒ»¸ö³É»¨Ëص°°×£¬¶ÔÓÚ¡°Í¨¹ýÕûºÏ¸÷ÖÖ¿ª»¨Í¾¾¶¶ø´Ùʹ¿ª»¨¡±ÆðןËÐĵÄ×÷Óá£Ïà±È֮ϣ¬Terminal flower 1£¨TFL1£©£¬ÓëFT¹²ÏíÒ»¶Î¸ß¶È±£Êصݱ»ùËáÐòÁУ¬ÓÉÓÚµ¥¸ö°±»ùËáÍ»±ä£¬ÔÚÖ²Î↑»¨µÄ¹ý³ÌÖбíÏÖ³öÞ׿¹×÷Óá£È»¶ø£¬FTÔÚ·ÇÓÕµ¼Ìõ¼þϵıí´ï£¬Êܵ½Ò»¸öMADSºÐת¼Òò×Ó»ùÒòFLOWERING LOCUS C£¨FLC£©µÄÇ¿ÁÒÒÖÖÆ£¬ÔÚ´º»¯Í¾¾¶ÖÐÊÇÒ»¸öÖ÷ÒªµÄ¿ª»¨ÒÖÖÆÒò×Ó£¬ËüÒ²ÒÖÖÆÁíÒ»¸öÖØÒªµÄ¿ª»¨Æô¶¯×ÓSUppRESSOR OF OVEREXpRESSION OF CO1 (SOC1)µÄ±í´ï¡£³¤Ê±¼ä±©Â¶ÓÚµÍΣ¨´º»¯×÷Óã©¿ÉÒÔͨ¹ý½µµÍFLCµÄ±í´ï£¬¶ø»º½âFTµÄÒÖÖÆ£¬µ«ÊÇFLCµÄÎȶ¨ÒÖÖÆÐèÒªVERNALIZATION1 (VRN1)µÄ»îÐÔ¡£ÁíÒ»·½Ã棬CONSTANS£¨CO£©¡ª¡ª¹âÖÜÆÚ¿ª»¨Í¾¾¶µÄÒ»¸öÖØÒªµ÷½ÚÒò×Ó£¬¿ÉÓÐÖúÓÚFTµÄ¼¤»î¡£ÒÔǰµÄÑо¿±íÃ÷£¬ÈÕ³¤Ïà¹Ø»ùÒò£¬°üÀ¨CO£¬ÔÚ»¨Ñ¿·Ö»¯µÄζÈÐźÅÖпÉÄÜ·¢»Ó×Å»¥²¹ºÍÖØÒªµÄ×÷Óá£È»¶ø£¬¸ÉºµºÍζȶÔÖ²Î↑»¨»ùÒòµÄ×ÛºÏ×÷Ó㬻¹Ã»Óеõ½½øÒ»²½µÄÑо¿¡£

ÔÚ±¾Ñо¿ÖУ¬Ñо¿ÈËÔ±¶ÔÅèÔÔÀóÖ¦½øÐÐÁ˸ɺµ´¦Àí¡¢µÍδ¦ÀíºÍµÍδ¦ÀíºóµÄ¸Éºµ£¬ÒÔ̽ÌÖË®·ÖвÆÈºÍµÍζԻ¨Ñ¿·Ö»¯µÄÓ°Ïì¡£Ñо¿ÈËÔ±²ÉÓÃÐÂÒ»´úRNA²âÐò£¬¸ÅÊöÁ˳ɻ¨ÓÕµ¼¹ý³ÌÖз¢ÉúµÄҶƬת¼×é±ä»¯¡£

Ñо¿ÈËÔ±¶ÔÀ´×Ô²»Í¬´¦ÀíÇé¿öµÄ»ùÒò±í´ïÆ×½øÐÐÁ˱ȽϺͱíÕ÷£¬ÒÔʶ±ðÓÐÄÄÐ©ÖØÒª»ùÒò£¬²ÎÓëÁËÀóÖ¦ÏìÓ¦¸ÉºµºÍµÍÎµĻ¨Ñ¿·Ö»¯¡£´ËÍ⣬Ñо¿ÈËÔ±¸ù¾ÝÈ¨ÖØ»ùÒò¹²±í´ïÍøÂç·ÖÎö£¨WGCNA£©£¬¹¹½¨ÁËÖØÒª»ùÒòµÄ¹²±í´ïÍøÂç¡£ÔÚÀóÖ¦³É»¨ÓÕµ¼ÖпÉÄÜ·¢»ÓÖÐÊàµ÷½Ú×÷ÓõĻùÒò£¬Ò²±»·ÖÀë³öÀ´¡£×ܶøÑÔÖ®£¬ÕâЩÑо¿½á¹ûΪÀóÖ¦»¨Ñ¿ÓÕµ¼µÄµ÷¿ØÌṩÁËÒÀ¾Ý£¬ÎªÑо¿ÀóÖ¦»òÀàËÆÖ²ÎïµÄ¹¦ÄÜÐÔ¿ª»¨»ùÒò£¬µì¶¨ÁË»ù´¡¡£

£¨ÉúÎïͨ£ºÍõÓ¢£©

×¢£º³Âºñ±ò £¬ ²©Ê¿£¬Ñо¿Ô±£¬Ñо¿·½ÏòΪ¹ûÊ÷ÉúÀíѧÓëÑÇÈÈ´ø¹ûÊ÷ÔÔÅà¡£1983 Äê±ÏÒµÓÚËÄ´¨Å©Ñ§Ôº¹ûÊ÷רҵ£¬»ñѧʿѧλ£»1986 Äê±ÏÒµÓÚ»ªÄÏũҵ´óѧ¹ûÊ÷רҵ£¬»ñ˶ʿѧλ£» 2002 Äê 7 Ô±ÏÒµÓÚ»ªÄÏũҵ´óѧ԰ÒÕѧԺ¹ûÊ÷ѧרҵ£¬»ñ²©Ê¿Ñ§Î»¡£ÏÖΪ¹ú¼ÊÔ°ÒÕѧ»á»áÔ±¡£Ö÷ÒªÑо¿·½Ïò£ºÒÔÀóÖ¦ºÍÏ㽶ΪÖ÷µÄÈÈ´øÑÇÈÈ´ø¹ûÊ÷ÖÖÖÊ×ÊÔ´ÊÕ¼¯¡¢¼ø¶¨ÓëÆÀ¼Û£»ÀóÖ¦¡¢ÁúÑÛ²úÒµÁ´¹Ø¼ü¼¼ÊõÊÔÑéÓëʾ·¶£»ÈÈ´øÑÇÈÈ´ø¹ûÊ÷³É»¨ÓÕµ¼¡¢·¢¶ËÓ뻨·Ö»¯»úÀíºÍµ÷¿Ø¼¼ÊõÑо¿¡£ÓÈÆä¶ÔÀóÖ¦µÈ¹ûÊ÷»¨Ñ¿·Ö»¯µÄ½×¶ÎÐÔÓÐÉîÈëÑо¿¡£

ÉúÎïÍ¨ÍÆ¼öÔ­ÎÄÕªÒª£º
Integrative effect of drought and low temperature on litchi (Litchi chinensis Sonn.) floral initiation revealed by dynamic genome-wide transcriptome analysis
Abstract: Floral induction in litchi is influenced by multiple environment cues including temperature and soil water condition. In the present study, we determined that a combined treatment consisting of 14-day drought imposed prior to exposure to 35-day low temperature (T3) significantly promoted litchi flowering relative to the low temperature alone (T2), suggesting an integrative effect of drought and low temperature on litchi floral initiation. Analysis of transcriptomic changes in leaves from different treatments showed that 2,198 and 4,407 unigenes were differentially expressed in response to drought and low temperature, respectively. 1,227 of these unigenes were expressed in response to both treatments, implying an interaction of drought and low temperature on expression of genes involved in litchi floral initiation. Additionally, 932 unigenes were consistently differentially expressed during floral induction between T2 and T3 plants, which potentially accounts for the difference of flowering time. Thirty-eight transcription factors out of these 932 unigenes were identified as hub genes with central roles in regulation of litchi floral induction. The expression of litchi homologs of well-known flowering genes was also investigated, and one Flowering Locus T (FT) homolog may play a crucial role in litchi flowering in responses to drought and low temperature.