姚利曉,蘇娟,郭興茹,李鳳龍,何永睿,鄒修平,陳善春
枳啟動子的克隆和表達分析
姚利曉,蘇娟,郭興茹,李鳳龍,何永睿,鄒修平,陳善春
西南大學柑桔研究所/國家柑桔工程技術(shù)中心/國家柑桔品種改良中心,重慶 400712
【目的】基因工程是柑橘品種改良的一種重要手段。本研究基于枳根消減文庫中主要乳膠蛋白基因片段,克隆根特異啟動子序列,為研究外源基因在柑橘根組織的特異表達奠定基礎(chǔ)?!痉椒ā客纯寺〖皢幼有蛄小@肊xPASy、PSIPRED、SWISS-MODEL等在線軟件對編碼蛋白的理化特征、二級結(jié)構(gòu)和三級結(jié)構(gòu)進行生物信息學分析,利用PlantCARE數(shù)據(jù)庫對啟動子的順式作用元件進行預(yù)測。實時熒光定量PCR法對在不同樹齡枳根和葉中的表達進行分析。構(gòu)建啟動子與標記基因的融合載體,利用根癌農(nóng)桿菌轉(zhuǎn)化法轉(zhuǎn)化枳上胚軸,GUS染色觀察標記基因的表達部位?!窘Y(jié)果】枳含2個外顯子和1個內(nèi)含子,開放閱讀框長471 bp。PtMLP1蛋白由156個氨基酸組成,分子量17.63 kDa,等電點5.49,含Bet v I功能域。其二級結(jié)構(gòu)含3個-螺旋和7個-折疊,三級結(jié)構(gòu)包含一個保守疏水基結(jié)合位點和一個富含甘氨酸的回環(huán)結(jié)構(gòu)。5′端1 666 bp的上游調(diào)控序列不僅有TATA-box、CAAT-box等啟動子結(jié)構(gòu)的核心元件,還具有多個根組織特異表達元件,以及TGACG-motif、P-box和ABRE等激素應(yīng)答相關(guān)的順式作用元件。3′端非翻譯區(qū)具有加尾信號AATAAA。該基因在1月齡苗、6月齡苗、20年生成年枳根中的表達量分別是葉中的46.34、74.82、110.25倍。構(gòu)建啟動子的融合表達載體pBI121-ProPtMLP1::,獲得枳轉(zhuǎn)基因植株。啟動子驅(qū)動在轉(zhuǎn)基因枳幼苗根中特異表達,在3個轉(zhuǎn)基因枳株系的根中表達量分別為葉中表達量的124.78、11.53和7.76倍。【結(jié)論】獲得柑橘主要乳膠蛋白及啟動子序列,該啟動子可驅(qū)動標記基因在柑橘根組織特異表達。
枳;主要乳膠蛋白;根特異性啟動子;
【研究意義】柑橘是世界第一大水果,也是我國南方地區(qū)農(nóng)民脫貧致富和鄉(xiāng)村振興的支柱產(chǎn)業(yè)。我國柑橘的產(chǎn)量和種植面積均居世界第一位。然而,柑橘面臨著嚴重的干旱、凍害等非生物脅迫和黃龍病、潰瘍病等生物脅迫。轉(zhuǎn)基因技術(shù)是改良柑橘品質(zhì)和增強抗性的重要手段[1-2]。啟動子是決定外源基因轉(zhuǎn)錄效率的關(guān)鍵因素。在柑橘轉(zhuǎn)基因研究中,來自煙草花葉病毒的35S啟動子(cauliflower mosaic virus,CaMV35S)是最常用的組成型啟動子[3]。但組成型啟動子驅(qū)動外源基因在植物體內(nèi)持續(xù)、高效表達,不僅耗費植物大量能量和養(yǎng)分,也可能會改變某些性狀,影響植株的正常生長發(fā)育。因此,組織特異性啟動子和誘導(dǎo)型啟動子開始受到研究者的關(guān)注,前者驅(qū)動目的基因在特定的植物組織表達,后者可在特定的條件下誘導(dǎo)目的基因表達[4]。在植物轉(zhuǎn)基因研究中使用特異性啟動子,既能夠減少轉(zhuǎn)基因植物能量和養(yǎng)分的消耗,又可以降低轉(zhuǎn)基因植物環(huán)境釋放的風險。【前人研究進展】柑橘中研究相對較多的組織特異性啟動子是韌皮部啟動子,有柑橘來源的CsPP2.B1、CsVTE2[5]和CsSUS1p啟動子[6]。也有外源韌皮部特異啟動子用于柑橘轉(zhuǎn)基因的研究,如水稻東格魯桿狀病毒(RTBV)啟動子、擬南芥蔗糖/質(zhì)子同向轉(zhuǎn)運體基因(AtSUC2)啟動子和豇豆富甘氨酸蛋白基因(GRP)啟動子[7-8]。另外,來自馬鈴薯的KST1啟動子在柑橘保衛(wèi)細胞特異表達[9],花、果實、種子、胚和木質(zhì)部等組織和器官特異性啟動子也有應(yīng)用于柑橘轉(zhuǎn)基因研究的報道[3]。誘導(dǎo)型啟動子也用于柑橘轉(zhuǎn)基因研究,如低溫和光誘導(dǎo)的柑橘Ruby1啟動子[10]和人工合成的可被柑橘潰瘍病菌效應(yīng)因子特異識別的啟動子[11]?!颈狙芯壳腥朦c】根是植物的支撐器官,也是植物吸收水分和營養(yǎng)元素及響應(yīng)外界脅迫的重要器官。已經(jīng)從擬南芥[12]、煙草[13-14]、大豆[15]、鷹嘴豆[16]、水稻[17]、蘋果[18]等植物中分離出根組織特異性啟動子。目前,尚未發(fā)現(xiàn)柑橘根特異性啟動子的報道。雖然異源植物根特異性啟動子有可能用于柑橘轉(zhuǎn)基因的研究,但是,特異性啟動子的異源表達存在組成型表達的風險,如草莓根特異性啟動子FaRB7在煙草中異源轉(zhuǎn)化顯示為組成型表達特性[19],脅迫誘導(dǎo)型啟動子AtRD29A在柑橘中喪失了誘導(dǎo)表達功能[20]?!緮M解決的關(guān)鍵問題】枳屬于冬季落葉性灌木或灌木狀小喬木,是柑橘產(chǎn)區(qū)常用的砧木。枳砧柑橘一般表現(xiàn)樹勢較矮化、抗寒性強、結(jié)果時間較早、果實品質(zhì)佳、抗腳腐病和衰退病等優(yōu)點,但易感裂皮病,對鹽堿性土壤敏感,易表現(xiàn)缺鐵性黃化癥狀。本研究在前期構(gòu)建枳根消減文庫和全長文庫[21-22]基礎(chǔ)上,對枳主要乳膠蛋白基因和啟動子進行克隆和轉(zhuǎn)基因植物組織表達分析,為柑橘根部性狀的改良提供有利的基因資源,也為其他植物的根組織特異表達提供候選啟動子。
試驗于2021—2022年進行。枳()成年樹葉片和種子取自國家柑橘種質(zhì)資源圃(重慶)。枳實生苗和轉(zhuǎn)基因植株在國家柑桔品種改良中心網(wǎng)室中培養(yǎng)。試驗所用引物見表1。
表1 試驗用引物
分別取棗陽小葉枳根和葉各100 mg,在研缽中迅速加液氮研磨成粉末。轉(zhuǎn)入1.5 mL RNase-free離心管中,加入1 mL Trizol試劑,按照Trizol法提取樣品總RNA。
稱取約1 g幼葉材料,置于研缽中液氮研磨至粉末狀,按照改良CTAB法提取葉片總DNA。溶于200 μL TE溶液,紫外分光光度法結(jié)合瓊脂糖凝膠電泳檢測DNA的濃度和純度,儲存于-20 ℃?zhèn)溆谩?/p>
根據(jù)5′端上游調(diào)控序列設(shè)計引物,以棗陽小葉枳基因組DNA為模板,2PaR1和2PaS2引物對克隆啟動子序列。反應(yīng)體系為10×Ex Taq Buffer 5 μL,MgCl2(25 mmol?L-1)4 μL,dNTP(10 mmol?L-1each)1 μL,上、下游引物(20 μmol?L-1)各1 μL,DNA模板1 μL,Ex Taq 0.5 μL,加ddH2O至50 μL。反應(yīng)條件為95 ℃ 1 min;94 ℃ 30 s,55—50 ℃(0.5 ℃/循環(huán)、30 s),72 ℃ 2 min,10個循環(huán);94 ℃ 30 s,60 ℃ 30 s,72 ℃ 1—2 min,30個循環(huán);72 ℃ 10 min。通過瓊脂糖凝膠電泳純化回收PCR產(chǎn)物,與pMD19 simple載體連接,將陽性克隆送三博遠志基因公司測序。
利用在線軟件ExPASy(http://web.expasy.org/ compute_pi)預(yù)測蛋白分子量、理論等電點等理化特性。PSIPRED 4.0(http://bioinf.cs.ucl.ac.uk/psipred/)預(yù)測蛋白的二級結(jié)構(gòu),SWISS-MODEL(https://swissmodel.expasy.org/)預(yù)測蛋白的三級結(jié)構(gòu)。TMHMM和SignalP V5.0(https://services.healthtech.dtu.dk/)預(yù)測跨膜區(qū)域和信號肽區(qū)域。利用PlantCARE數(shù)據(jù)庫(http://bioinformatics.psb.ugent.be/webtools/plantcare/ html/)預(yù)測啟動子序列的順式作用元件。
以500 ng總RNA為模板,采用PrimeScript?RT Reagent Kit(Perfect Real Time)在37 ℃反應(yīng)15 min合成cDNA第一鏈,85 ℃作用5 min滅活逆轉(zhuǎn)錄酶。實時熒光定量PCR的反應(yīng)體系為:2×SYBR?Premix Ex Taq Buffer 12.5 μL,上、下游引物(10 μmol?L-1)各1 μL,cDNA模板1 μL,加ddH2O至25 μL。反應(yīng)條件為95 ℃ 90 s;95 ℃10 s,61 ℃20 s,72 ℃20 s,40個循環(huán);72 ℃延伸1 min。以為內(nèi)參基因,采用2-ΔΔCT法計算目的基因的相對表達量。每樣品設(shè)3次生物學重復(fù)。
PCR克隆啟動子序列,構(gòu)建中間載體pMD19-ProPtMLP1。然后用限制性內(nèi)切酶d Ⅲ和Ⅰ對pMD19-ProPtMLP1和pBI121分別進行酶切,瓊脂糖凝膠純化回收目的片段。將回收的pBI121載體片段和目的片段用T4連接酶連接,轉(zhuǎn)入大腸桿菌DH5α中,提取單克隆抽提質(zhì)粒進行酶切檢測試驗,結(jié)果顯示pBI121-ProPtMLP1::載體構(gòu)建成功。電擊法轉(zhuǎn)化到感受態(tài)根癌農(nóng)桿菌EHA105細胞。
用2%次氯酸鈉對枳成熟種子消毒,將其播種于滅菌的MS固體培養(yǎng)基中。待上胚軸生長至8—10 cm,光照培養(yǎng)5 d。將含有pBI121-ProPtMLP1::載體的農(nóng)桿菌EHA105侵染切割成1 cm小段的枳上胚軸,同時以含pBI121空載體的農(nóng)桿菌侵染枳作為對照組。當枳不定芽長到1—2 cm的時候,將其轉(zhuǎn)移到MS生根培養(yǎng)基(0.25 mg·L-1-萘乙酸、0.25 mg·L-1吲哚-3-丁酸、500 mg·L-1羧芐青霉素)生根培養(yǎng)4—6周,取葉片提取DNA,以GUSF/GUSR引物進行候選轉(zhuǎn)基因植物的PCR檢測。
柑橘轉(zhuǎn)基因株系的根、葉按照Peng等[23]的方法進行GUS組織化學染色。GUS染液成分如下:100 mmol?L-1NaH2PO4,100 mmol?L-1Na2HPO4,0.5 mmol?L-1K4[Fe(CN)6],0.5 mmol?L-1K3[Fe(CN)6],10 mmol?L-1EDTA-Na2,1 mmol?L-1X-Gluc,0.1% Sodium azide,0.1% TritonX-100。37 ℃下孵育過夜,用70%酒精進行脫色,最后進行顯微觀察拍照。
通過核苷酸序列比對,發(fā)現(xiàn)枳根消減cDNA文庫中contig 22和singleton 297[22]與枳根全長文庫中的JK316196[21]為同一基因。三者經(jīng)序列拼接后得到含完整開放閱讀框的基因,編碼主要乳膠蛋白(major latex protein),將其命名為。利用2PaS2和2PaR1引物克隆啟動子序列,2IS和2IR引物克隆內(nèi)含子序列。分析結(jié)構(gòu),發(fā)現(xiàn)含2個外顯子(186 bp和285 bp)、1個內(nèi)含子(104 bp)及5′端上游調(diào)控序列(1 666 bp)和具有poly(A)信號AATAAA的3′端非翻譯區(qū)序列(207 bp)。
該基因開放閱讀框長471 bp,以ATG為起始密碼子,以TAG為終止密碼子,共編碼156個氨基酸(圖1)。分析發(fā)現(xiàn)其編碼蛋白具有保守Bet v 1功能域(2—152氨基酸殘基),分子量為17.63 kDa,等電點為5.49,不含信號肽和跨膜區(qū)。預(yù)測PtMLP1蛋白二級結(jié)構(gòu)中有3個-螺旋和7個-折疊,三級結(jié)構(gòu)中包含一個保守疏水基結(jié)合位點和一個富含甘氨酸的回環(huán)結(jié)構(gòu)。
啟動子序列中具有TATA-box、CAAT- box等啟動子結(jié)構(gòu)的核心元件和多個根特異表達的順式作用元件,還具有MYBHv1結(jié)合位點CCAAT、分生組織表達元件CAT-box、MeJA反應(yīng)元件TGACG-motif,赤霉素反應(yīng)元件P-box,脫落酸反應(yīng)元件ABRE等應(yīng)答元件(圖1)。
實時熒光定量PCR分析結(jié)果表明,1月齡幼苗根中的表達量是葉的46.34倍,6月齡苗根的表達量是葉的78.42倍,20年生成年樹根的表達量是葉的110.25倍(圖2-A)。
為進一步確認在根中的特異表達,下載其同源基因Cs2g_pb010910在甜橙不同組織中的轉(zhuǎn)錄組數(shù)據(jù)(http://citrus.hzau.edu.cn/)并進行分析。發(fā)現(xiàn)該基因在根轉(zhuǎn)錄組FPKM平均值為9 930.67,遠高于早期胚珠、晚期胚珠、種子、幼果果肉、成熟果果肉和葉等組織(圖2-B)。
同源克隆啟動子序列,用其取代pBI121載體上d III和I酶切位點之間的CaMV35S啟動子片段,成功構(gòu)建pBI121-ProPtMLP1::載體(圖3)。
對候選轉(zhuǎn)基因枳抽提DNA進行標記基因的PCR檢測,結(jié)果顯示獲得10株有ProPtMLP1啟動子插入基因組的幼苗。組織化學染色結(jié)果表明轉(zhuǎn)基因枳的葉中無色,根顯現(xiàn)藍色,且根組織縱切觀察顯示維管束組織染色深于表皮。而對照組(CaMV35S啟動子)枳幼苗的根和葉中均顯示藍色。對部分枳轉(zhuǎn)基因苗進行實時熒光定量PCR分析,結(jié)果表明轉(zhuǎn)基因苗根中的表達量分別是葉中的124.78倍、11.53倍、7.77倍(圖4)。
主要乳膠蛋白(major latex protein,MLP)是植物特有的一種蛋白家族,其三級結(jié)構(gòu)可形成疏水空腔結(jié)構(gòu)和富含甘氨酸的回環(huán)結(jié)構(gòu),與疏水化合物相結(jié)合[24]。MLP首次從罌粟的乳膠中鑒定出來[25],廣泛存在于其他植物中,目前已經(jīng)從葡萄、蘋果、黃瓜、西葫蘆等園藝植物基因組中鑒定出多個家族成員[26-29],在柑橘中尚未見關(guān)于主要乳膠蛋白基因的報道。本研究從枳中克隆出,其編碼蛋白不僅具有MLP蛋白二級結(jié)構(gòu)中存在的-螺旋和-折疊,而且三級結(jié)構(gòu)含有疏水基結(jié)合位點和富含甘氨酸的回環(huán)結(jié)構(gòu),是一種主要乳膠蛋白的編碼基因。轉(zhuǎn)錄組數(shù)據(jù)和實時熒光定量PCR結(jié)果顯示在柑橘根中特異表達。這與擬南芥和、棉花、西葫蘆在根中優(yōu)勢表達[26,30-32]結(jié)果相一致。MLP基因家族成員在植物的其他組織中也存在優(yōu)勢或特異表達,如蘋果主要在花中表達[33]。關(guān)于MLP功能的解析尚處于初級階段,研究顯示MLP正向調(diào)控種子休眠、營養(yǎng)生長,抑制生殖生長[31-32],在植物中過表達可增強對凍害、干旱等非生物脅迫的抗性[33-34],但具體調(diào)控機制未知,其在柑橘中的生物學功能值得關(guān)注。
黑色小寫字體表示啟動子序列,棕色橫線為順式作用元件:①根特異基序,②TGACT基序,③ P盒子,④CCAAT盒子,⑤CAT盒子,⑥ABRE,⑦CAAT盒子,⑧TATA盒子。紅色大寫字體表示外顯子區(qū)域和編碼氨基酸;綠色小寫字體表示內(nèi)含子;藍色小寫字體表示3′非翻譯區(qū),具有加尾信號AATAAA
The black lowercases mean promoter sequence, with the cis-acting elements marked with brown horizontal lines: ① root specific motif, ② TGACT-motif, ③ P-box, ④ CCAAT-box, ⑤ CAT-box, ⑥ ABRE, ⑦ CAAT-box, ⑧TATA-box. The red uppercases mean exons and their encoded amino acids. The green lowercases mean intron sequence. The blue lowercases mean a 3′-terminal untranslated region with the poly (A) signal (AATAAA)
圖1及啟動子序列
Fig. 1 The DNA sequence of
A:PtMLP1在不同生長期枳根和葉中的表達結(jié)果;B:PtMLP1同源基因Cs2g_pb010910在甜橙不同組織轉(zhuǎn)錄組中的FPKM值(數(shù)據(jù)來源于http://citrus.hzau.edu.cn/)A: The expression of PtMLP1 in roots and leaves of 1-month, 6-month, and 20-year-old Poncirus trifoliate; B: FPKM value of orthologous gene with PtMLP1 from RNA-seq data of sweet orange (Data from http://citrus.hzau.edu.cn/)
圖3 PtMLP1啟動子克?。ˋ)和植物表達載體構(gòu)建示意圖(B)
圖4 部分ProPtMLP1::GUS轉(zhuǎn)基因枳中GUS的表達分析
在柑橘轉(zhuǎn)基因研究中,常用煙草花葉病毒的35S啟動子作為外源基因的組成型啟動子,也利用誘導(dǎo)型啟動子和韌皮部、木質(zhì)部、花、果實、種子和胚等組織和器官特異性啟動子[3]。根是植物生長、發(fā)育和抵抗不良環(huán)境的重要組織,關(guān)于柑橘根特異性表達基因已有研究成果,尚未發(fā)現(xiàn)關(guān)于柑橘根特異性啟動子的報道或其他植物根特異性啟動子應(yīng)用于柑橘轉(zhuǎn)基因研究的報道。
柑橘根中高表達或優(yōu)勢表達的基因常常來自功能基因家族的研究。海藻糖-6-磷酸合成酶(trehalose-6- phosphate synthase,TPS)在柑橘基因組中有8個成員,其中6個在根組織高表達,另外2個在莖中高表達[35]。6個多胺氧化酶基因在柑橘根中都存在優(yōu)勢表達[36]。和是8個H+-ATPase家族基因中在根中優(yōu)勢表達的成員[37]。筆者課題組在資陽香橙中發(fā)現(xiàn)與鐵吸收和轉(zhuǎn)運相關(guān)的鐵螯合還原酶和5在根中優(yōu)勢表達,并受到缺鐵脅迫的誘導(dǎo)[38]。另外,筆者課題組前期構(gòu)建了枳根的消減cDNA文庫,豐富了根組織中優(yōu)勢表達基因的資源[22]。MLP家族基因的啟動子如擬南芥啟動子可驅(qū)動標記基因在擬南芥根中特異表達[31]。本研究結(jié)果增加了MLP根特異性啟動子的種類,也為柑橘轉(zhuǎn)基因功能研究和種質(zhì)創(chuàng)制提供了本源的根組織特異啟動子。
通過序列比對,發(fā)現(xiàn)枳根消減文庫中contig22和singleton 297為的片段。的啟動子可在轉(zhuǎn)基因枳中驅(qū)動標記基因在根中特異表達。這種從根的特異表達基因發(fā)掘根特異啟動子的研究思路可篩選和鑒定更多的柑橘組織特異性啟動子,為柑橘砧木的改良提供更多的候選啟動子種類,也為該啟動子在柑橘和其他植物基因改良中的應(yīng)用奠定了理論基礎(chǔ)。
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Cloning and Expression Analysis ofPromoter in
YAO LiXiao, SU Juan, GUO XingRu, LI FengLong, HE YongRui, ZOU XiuPing, CHEN ShanChun
Citrus Research Institute, Southwest University/National Citrus Engineering Technology Research Center/National Center for Citrus Varieties Improvement, Chongqing 400712
【Objective】Genetic transformation plays a significant role in exploring gene function and improving traits in citrus. Tissue-specific promoters is a key to regulate the expression of transgenes in particular tissues. Here, expression characteristics of thepromoter, isolated from the root subtractive library of, was thoroughly examined, which could lay a foundation for the specific expression of exogenous genes in citrus root tissue. 【Method】The complete sequence ofgene was cloned by PCR using DNA as a template. The physiochemical attributes, secondary and tertiary structures of PtMLP1 protein were predicted by ExPASy, PSIPRED, and SWISS-MODEL tools. Cis-acting elements inpromoter were predicted by PlantCARE. The expression pattern oftrees of diverse ages was examined by employing real-time qPCR. Furthermore, to investigate the tissue-specific expression of thepromoter in citrus, a pBI121-ProPtMLP1::plasmid, in whichexpression was controlled by thepromoter, was constructed and then introduced intothrough-mediated hypocotyl transformation. 【Result】consisted of two exons and one intron, which possessed a 471 bp open reading frame encoding a protein with 156 amino acid residues. This protein had a molecular weight of 17.63 kilodaltons with an isoelectric point of 5.49 and contained a Bet v I functional domain in its primary structure. Moreover, the secondary structure of PtMLP1 contained three α-helices and seven β-folds, while its tertiary structure had a conserved hydrophobic binding site and a cyclic domain, which was rich in glycine. Thepromoter was 1 666 bp long. Multiple root-specific expression elements, phytohormone response elements (such as the TGACG motif, P-box, and ABRE), and the TATA box and CAAT box core elements were predicted in the promoter. Additionally, the 3-terminal untranslated region ofwas predicted to contain a poly (A) signal AATAAA. Notably, the expression ofwas significantly higher in the roots of 1-month, 6-month, and 20-year-old, with fold changes of 46.34, 74.82, and 110.25, respectively, compared with those in leaves. GUS expression analysis of pBI121-ProPtMLP1::transgenic plants showed thatpromoter exhibited specific and high expression in roots, and its expression levels were 7.76 to 124.78 times of that in the leaves. 【Conclusion】The sequences of thegene and its promoter were successfully obtained, and the promoter demonstrated the ability to drive specific expression ofgene in citrus roots.
; major latex protein; root-specific promoter;
10.3864/j.issn.0578-1752.2023.24.009
2023-05-31;
2023-08-04
國家重點研發(fā)計劃(2021YFD140080,2021YFD160080)、國家現(xiàn)代農(nóng)業(yè)(柑橘)產(chǎn)業(yè)技術(shù)體系(CARS-26)
姚利曉,E-mail:yaolixiao@cric.cn。通信作者陳善春,E-mail:chenshanchun@cric.cn
(責任編輯 趙伶俐)