The magnetic fields and dynamical processes in the solar polar regions play a crucial role in the solar magnetic cycle and in supplying mass and energy to the fast solar wind,ultimately being vital in controlling sola...The magnetic fields and dynamical processes in the solar polar regions play a crucial role in the solar magnetic cycle and in supplying mass and energy to the fast solar wind,ultimately being vital in controlling solar activities and driving space weather.Despite numerous efforts to explore these regions,to date no imaging observations of the Sun's poles have been achieved from vantage points out of the ecliptic plane,leaving their behavior and evolution poorly understood.This observation gap has left three top-level scientific questions unanswered:How does the solar dynamo work and drive the solar magnetic cycle?What drives the fast solar wind?How do space weather processes globally originate from the Sun and propagate throughout the solar system?The Solar Polarorbit Observatory(SPO)mission,a solar polar exploration spacecraft,is proposed to address these three unanswered scientific questions by imaging the Sun's poles from high heliolatitudes.In order to achieve its scientific goals,SPO will carry six remote-sensing and four in-situ instruments to measure the vector magnetic fields and Doppler velocity fields in the photosphere,to observe the Sun in the extreme ultraviolet,X-ray,and radio wavelengths,to image the corona and the heliosphere up to 45 R_(s),and to perform in-situ detection of magnetic fields,and low-and high-energy particles in the solar wind.The SPO mission is capable of providing critical vector magnetic fields and Doppler velocities of the polar regions to advance our understanding of the origin of the solar magnetic cycle,providing unprecedented imaging observations of the solar poles alongside in-situ measurements of charged particles and magnetic fields from high heliolatitudes to unveil the mass and energy supply that drive the fast solar wind,and providing observational constraints for improving our ability to model and predict the three-dimensional(3D)structures and propagation of space weather events.展开更多
旨在探究鸡骨骼肌中VGLL2基因天然反义链转录本VGLL2 AS lncRNA(VGLL2-AS)与VGLL2的关系。本研究首先采用PCR和测序技术验证VGLL2-AS是否存在;之后分别采集不同周龄固始蛋鸡(1日龄、6周龄、16周龄、22周龄、30周龄,每个周龄各6只)组织样...旨在探究鸡骨骼肌中VGLL2基因天然反义链转录本VGLL2 AS lncRNA(VGLL2-AS)与VGLL2的关系。本研究首先采用PCR和测序技术验证VGLL2-AS是否存在;之后分别采集不同周龄固始蛋鸡(1日龄、6周龄、16周龄、22周龄、30周龄,每个周龄各6只)组织样,采用荧光定量PCR分析VGLL2基因和其反义链转录本VGLL2-AS的表达谱;采用双向转录试验和核酸酶保护试验检测VGLL2和VGLL2-AS是否可以双向转录且两者之间关系;体外分离培养原代成肌细胞(11胚龄固始鸡胚),然后用2μg·mL^(-1)的放线菌素D处理成肌细胞(对照组不做处理),收取处理不同时间点细胞(0~8 h,每组各个时间点各做3个重复),检测VGLL2-AS与VGLL2的半衰期;分离鸡成肌细胞的细胞核和细胞质,通过RT-qPCR方法确定两者的细胞定位;利用PCR扩增及测序对VGLL2的转录本进行验证;最后利用RT-qPCR检测它们在固始蛋鸡胸肌组织(1日龄、6周龄、16周龄、22周龄、30周龄每个周龄各6只)中的时空表达规律和相关性。结果表明,VGLL2-AS在鸡的转录组中真实存在;VGLL2与VGLL2-AS均在肌肉中特异高表达(P<0.05);VGLL2-AS与VGLL2可以进行双向转录且二者之间可以形成双链RNA;VGLL2-AS半衰期较VGLL2长;在成肌细胞中,VGLL2-AS和VGLL2主要定位于细胞质中(P<0.001);VGLL2只存在VGLL2-mRNA、VGLL2-X2和VGLL2-X3转录本;VGLL2-mRNA和VGLL2-X3与VGLL2-AS表达趋势一致,且VGLL2-mRNA、X3和VGLL2-AS的表达呈现极强的正相关(r分别为0.943和0.935,P<0.01)。综上所述,VGLL2-AS作为VGLL2的反义链编码的lncRNA定位于细胞质中,可能通过与VGLL2形成的双链RNA之间的相互作用,然后参与调节VGLL2的表达并维持其稳定性,最终在鸡的早期肌肉发育中发挥重要作用。本研究的结果扩展了鸡中关于NATs的研究,并为鸡VGLL2基因与其天然反义链转录本VGLL2-AS在鸡骨骼肌发育中的生物学功能的研究奠定了基础,对于提高禽类的生长发育具有一定的意义。展开更多
为了阐明低盐虾酱在低温发酵过程中的代谢物特点,采用气相色谱-质谱联用技术对低盐虾酱在低温发酵过程中的代谢物进行监测;结合t检验和变量投影重要性(variable importance in projection,VIP)分析等多元统计分析,筛选出差异代谢物。结...为了阐明低盐虾酱在低温发酵过程中的代谢物特点,采用气相色谱-质谱联用技术对低盐虾酱在低温发酵过程中的代谢物进行监测;结合t检验和变量投影重要性(variable importance in projection,VIP)分析等多元统计分析,筛选出差异代谢物。结果表明,正交偏最小二乘判别分析模型显示,不同温度下发酵低盐虾酱之间的代谢物能够明显分离。2组低盐虾酱中共有44种主要代谢物,包括氨基酸类16种、脂肪酸类6种、胺类2种、有机酸类8种、醇类3种、核苷酸类3种、其他类化合物6种。以P<0.05和VIP>1为筛选条件,得到30种差异代谢物,主要包括氨基酸类7种、酯类2种、嘌呤类2种、有机酸类8种、醇类2种和其他代谢物9种;其中,与对照组(20℃)相比,低温组(10℃)中L-丝氨酸、L-苏氨酸、黄嘌呤、次黄嘌呤和L-谷氨酰胺显著增加,乙酸橙花酯、樱黄素和褪黑素显著减少(P<0.01)。研究结果为进一步改善低盐虾酱生产工艺提供一定的理论依据。展开更多
文摘The magnetic fields and dynamical processes in the solar polar regions play a crucial role in the solar magnetic cycle and in supplying mass and energy to the fast solar wind,ultimately being vital in controlling solar activities and driving space weather.Despite numerous efforts to explore these regions,to date no imaging observations of the Sun's poles have been achieved from vantage points out of the ecliptic plane,leaving their behavior and evolution poorly understood.This observation gap has left three top-level scientific questions unanswered:How does the solar dynamo work and drive the solar magnetic cycle?What drives the fast solar wind?How do space weather processes globally originate from the Sun and propagate throughout the solar system?The Solar Polarorbit Observatory(SPO)mission,a solar polar exploration spacecraft,is proposed to address these three unanswered scientific questions by imaging the Sun's poles from high heliolatitudes.In order to achieve its scientific goals,SPO will carry six remote-sensing and four in-situ instruments to measure the vector magnetic fields and Doppler velocity fields in the photosphere,to observe the Sun in the extreme ultraviolet,X-ray,and radio wavelengths,to image the corona and the heliosphere up to 45 R_(s),and to perform in-situ detection of magnetic fields,and low-and high-energy particles in the solar wind.The SPO mission is capable of providing critical vector magnetic fields and Doppler velocities of the polar regions to advance our understanding of the origin of the solar magnetic cycle,providing unprecedented imaging observations of the solar poles alongside in-situ measurements of charged particles and magnetic fields from high heliolatitudes to unveil the mass and energy supply that drive the fast solar wind,and providing observational constraints for improving our ability to model and predict the three-dimensional(3D)structures and propagation of space weather events.
文摘旨在探究鸡骨骼肌中VGLL2基因天然反义链转录本VGLL2 AS lncRNA(VGLL2-AS)与VGLL2的关系。本研究首先采用PCR和测序技术验证VGLL2-AS是否存在;之后分别采集不同周龄固始蛋鸡(1日龄、6周龄、16周龄、22周龄、30周龄,每个周龄各6只)组织样,采用荧光定量PCR分析VGLL2基因和其反义链转录本VGLL2-AS的表达谱;采用双向转录试验和核酸酶保护试验检测VGLL2和VGLL2-AS是否可以双向转录且两者之间关系;体外分离培养原代成肌细胞(11胚龄固始鸡胚),然后用2μg·mL^(-1)的放线菌素D处理成肌细胞(对照组不做处理),收取处理不同时间点细胞(0~8 h,每组各个时间点各做3个重复),检测VGLL2-AS与VGLL2的半衰期;分离鸡成肌细胞的细胞核和细胞质,通过RT-qPCR方法确定两者的细胞定位;利用PCR扩增及测序对VGLL2的转录本进行验证;最后利用RT-qPCR检测它们在固始蛋鸡胸肌组织(1日龄、6周龄、16周龄、22周龄、30周龄每个周龄各6只)中的时空表达规律和相关性。结果表明,VGLL2-AS在鸡的转录组中真实存在;VGLL2与VGLL2-AS均在肌肉中特异高表达(P<0.05);VGLL2-AS与VGLL2可以进行双向转录且二者之间可以形成双链RNA;VGLL2-AS半衰期较VGLL2长;在成肌细胞中,VGLL2-AS和VGLL2主要定位于细胞质中(P<0.001);VGLL2只存在VGLL2-mRNA、VGLL2-X2和VGLL2-X3转录本;VGLL2-mRNA和VGLL2-X3与VGLL2-AS表达趋势一致,且VGLL2-mRNA、X3和VGLL2-AS的表达呈现极强的正相关(r分别为0.943和0.935,P<0.01)。综上所述,VGLL2-AS作为VGLL2的反义链编码的lncRNA定位于细胞质中,可能通过与VGLL2形成的双链RNA之间的相互作用,然后参与调节VGLL2的表达并维持其稳定性,最终在鸡的早期肌肉发育中发挥重要作用。本研究的结果扩展了鸡中关于NATs的研究,并为鸡VGLL2基因与其天然反义链转录本VGLL2-AS在鸡骨骼肌发育中的生物学功能的研究奠定了基础,对于提高禽类的生长发育具有一定的意义。
文摘为了阐明低盐虾酱在低温发酵过程中的代谢物特点,采用气相色谱-质谱联用技术对低盐虾酱在低温发酵过程中的代谢物进行监测;结合t检验和变量投影重要性(variable importance in projection,VIP)分析等多元统计分析,筛选出差异代谢物。结果表明,正交偏最小二乘判别分析模型显示,不同温度下发酵低盐虾酱之间的代谢物能够明显分离。2组低盐虾酱中共有44种主要代谢物,包括氨基酸类16种、脂肪酸类6种、胺类2种、有机酸类8种、醇类3种、核苷酸类3种、其他类化合物6种。以P<0.05和VIP>1为筛选条件,得到30种差异代谢物,主要包括氨基酸类7种、酯类2种、嘌呤类2种、有机酸类8种、醇类2种和其他代谢物9种;其中,与对照组(20℃)相比,低温组(10℃)中L-丝氨酸、L-苏氨酸、黄嘌呤、次黄嘌呤和L-谷氨酰胺显著增加,乙酸橙花酯、樱黄素和褪黑素显著减少(P<0.01)。研究结果为进一步改善低盐虾酱生产工艺提供一定的理论依据。