为探究一种包含泛素调节性X结构域的蛋白(ubiquitin regulatory X domain-containing protein,UBXN1)在大黄鱼抗盾纤毛虫感染中的作用,以及可能涉及的免疫信号通路。本实验克隆鉴定了大黄鱼UBXN1基因,并利用在线软件对其序列特征进行生...为探究一种包含泛素调节性X结构域的蛋白(ubiquitin regulatory X domain-containing protein,UBXN1)在大黄鱼抗盾纤毛虫感染中的作用,以及可能涉及的免疫信号通路。本实验克隆鉴定了大黄鱼UBXN1基因,并利用在线软件对其序列特征进行生物信息学分析;采用实时荧光定量PCR(qRT-PCR)检测UBXN1在健康大黄鱼各组织中的表达,及盾纤毛虫感染后的诱导表达变化;并进行了UBXN1的亚细胞定位;转录组测序分析了UBXN1过表达前后的差异表达基因。结果显示,UBXN1基因cDNA全长为915 bp,编码304个氨基酸。蛋白多重序列比对和结构预测表明UBXN1是一个进化保守的蛋白,包含UBA和UBX结构域。qRT-PCR分析表明UBXN1在所检测的11种组织中均有表达,脑中表达量最高,其次是肝脏、心脏和肾脏,在肌肉中表达量最低;盾纤毛虫感染大黄鱼后,UBXN1在脾脏、脑、肝脏和肾脏中表达量早期显著升高,后期逐步恢复至正常水平。亚细胞定位分析表明,UBXN1在大黄鱼肾脏细胞质和细胞核中均有表达。在293T细胞过表达UBXN1,转录组差异表达分析筛选到12个上调基因,4个下调基因,其中RPL41/RPL39/XIST/RNA45SN4表达量显著增加,而ATP8/ND4L表达量显著减少。研究表明UBXN1在大黄鱼抗寄生虫免疫应答中发挥重要作用。本实验为进一步研究UBXN1的免疫信号通路奠定基础。展开更多
Herein,we report a three-dimensional porous TiO_(2)/Fe_(2)TiO_(5)/Fe_(2)O_(3)(TFF)inverse opal through in situ thermal solid reactions for photoelectrochemical water splitting.The Fe_(2)TiO_(5) interfacial layer withi...Herein,we report a three-dimensional porous TiO_(2)/Fe_(2)TiO_(5)/Fe_(2)O_(3)(TFF)inverse opal through in situ thermal solid reactions for photoelectrochemical water splitting.The Fe_(2)TiO_(5) interfacial layer within TFF acting as a bridge to tightly connect to TiO_(2) and Fe_(2)O_(3) reduces the interfacial charge transfer resistance,and suppresses the bulk carrier recombination.The optimized TFF displays a remarkable photocurrent density of 0.54mAcm^(-2) at 1.23V vs.reversible hydrogen electrode(RHE),which is 25 times higher than that of TiO_(2)/Fe_(2)O_(3)(TF)inverse opal(0.02mAcm^(-2) at 1.23V vs.RHE).The charge transfer rate in TFF inverse opal is 2-8 times higher than that of TF in the potential range of 0.7-1.5V vs.RHE.The effects of the Fe_(2)TiO_(5) interfacial layer are further revealed by X-ray absorption spectroscopy and intensity-modulated photocurrent spectroscopy.This work offers an interfacial engineering protocol to improve charge separation and transfer for efficient solar water splitting.展开更多
基金supported by the National Natural Science Foundation of China(21771001 and 51872002)Anhui Provincial Natural Science Foundation(1708085ME120)+2 种基金the Program of Anhui Scientific and Technical Leaders Reserve Candidates(2018RH168)the Scholar Program for the Outstanding Innovative Talent of College Discipline(Specialty)the doctoral start-up fund and open fund for Discipline Construction,Institute of Physical Science and Information Technology,Anhui University.
文摘Herein,we report a three-dimensional porous TiO_(2)/Fe_(2)TiO_(5)/Fe_(2)O_(3)(TFF)inverse opal through in situ thermal solid reactions for photoelectrochemical water splitting.The Fe_(2)TiO_(5) interfacial layer within TFF acting as a bridge to tightly connect to TiO_(2) and Fe_(2)O_(3) reduces the interfacial charge transfer resistance,and suppresses the bulk carrier recombination.The optimized TFF displays a remarkable photocurrent density of 0.54mAcm^(-2) at 1.23V vs.reversible hydrogen electrode(RHE),which is 25 times higher than that of TiO_(2)/Fe_(2)O_(3)(TF)inverse opal(0.02mAcm^(-2) at 1.23V vs.RHE).The charge transfer rate in TFF inverse opal is 2-8 times higher than that of TF in the potential range of 0.7-1.5V vs.RHE.The effects of the Fe_(2)TiO_(5) interfacial layer are further revealed by X-ray absorption spectroscopy and intensity-modulated photocurrent spectroscopy.This work offers an interfacial engineering protocol to improve charge separation and transfer for efficient solar water splitting.