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1.
新型冠状病毒肺炎(Coronavirus disease 2019,COVID-19)是由新型冠状病毒(Severe acute respiratory syndrome coronavirus 2,SARS-CoV-2)引起的一种新的传染病。阻止COVID-19流行最有效的方法就是研制安全有效的疫苗,目前国内外多家机构开展了COVID-19疫苗的研究,包括核酸疫苗、病毒载体疫苗、灭活疫苗、重组蛋白疫苗、减毒流感病毒载体疫苗等不同类型,并取得了快速进展。本文对COVID-19疫苗的类型、研究进展、存在的问题等进行综述。  相似文献   

2.
本期导读     
自2019年12月以来,新型冠状病毒肺炎在全球蔓延,2020年1月30日,世界卫生组织(World Health Organization,WHO)将新型冠状病毒肺炎疫情列为"国际关注的突发公共卫生事件",我国也将该病作为急性呼吸道传染病纳入《中华人民共和国传染病防治法》规定的乙类传染病,并按照甲类传染病管理。2020年2月11日,WHO正式将新型冠状病毒肺炎命名为COVID-19(Corona Virus Disease 2019)。国际病毒分类委员会将该病毒命名为严重急性呼吸系统综合征冠状病毒(severe acute respiratory syndrome coromavirus 2,SARS-CoV-2)。截止2020年8月28日全球已累计确诊24356983人,累计死亡826791人。严重危害着人类的健康和生命安全。虽然中国政府采取了最强有力的措施,社会各界一起抗击疫情,取得了显著成效。但是由于目前COVID-19疫苗尚未上市,也无特效药物,COVID-19的全球快速蔓延势头仍没有得到有效遏制。世界各国的科学家、医学家们正在努力开发针对SARS-CoV-2和COVID-19的安全有效的预防疫苗和治疗方法。  相似文献   

3.
新型冠状病毒(severe acute respiratory syndrome coronavirus-2, SARS-CoV-2)是一种可引起人新型冠状病毒肺炎(novel coronavirus pneumonia, NCP;亦称为COVID-19)的新发呼吸道病原体,与中东呼吸综合征冠状病毒(Middle East respiratory syndrome coronavirus, MERS-CoV)和严重急性呼吸综合征冠状病毒(severe acute respiratory syndrome coronavirus, SARS-CoV)同属β-冠状病毒,其受体与SARS-CoV的受体相同,均利用血管紧张素转化酶2(angiotensin-converting enzyme 2, ACE2)受体入侵人体细胞。SARS-CoV-2主要通过呼吸系统和消化系统感染,具有较高的传染性和致死率。目前,新冠病毒引起的肺炎已在全球范围内大规模蔓延,接种疫苗是根除病毒性传染病最有效的方法,国内外各大科研机构已快速展开COVID-19疫苗的研制工作,这是有效控制疫情的重点和难点。现就新冠病毒的致病机理、感染途径及疫苗研发作一综述,旨在为相关研究人员提供参考。  相似文献   

4.
世界范围内流行的SARS-CoV-2已造成大批新型冠状病毒肺炎(COVID-19)患者,严重威胁着全人类生命健康.新型冠状病毒肺炎尚没有特效药,也没有疫苗,实验室确诊新型冠状病毒肺炎,隔离传染源,尽早治愈患者对整个疫情防控起着非常重要的作用.目前实验室检测方法有病毒分离培养、实时荧光定量PCR、环介导等温扩增技术、CRISPR/Cas技术、测序技术、基因芯片和抗原抗体检测.本文就上述几种方法做一综述,为确诊COVID-19提供参考.  相似文献   

5.
2019冠状病毒病(COVID-19)作为人类当前面临的最紧迫的公共卫生事件,引起全球各国的广泛重视。严重急性呼吸系统综合征冠状病毒2(SARS-CoV-2)疫苗研发被寄予了厚望,期望成为人类抗击COVID-19的有效武器。本文从SARS-CoV-2的致病机制、各种研发平台疫苗的优势和不足、疫苗研发现状和挑战等方面进行简要阐述,提供一个较为全面的视角来看待新冠疫苗在此次新型冠状病毒疫情防控中可能发挥的作用。  相似文献   

6.
新型冠状病毒肺炎(coronavirus disease 2019,COVID-19)正在全球大流行,疫苗研发工作也在积极推进.截至2021年3月2日,全球正在研制的新型冠状病毒疫苗共有258种,疫苗种类囊括灭活疫苗、减毒活疫苗、亚单位疫苗、病毒载体疫苗、DNA疫苗、RNA疫苗和病毒样颗粒,有76种疫苗已进入临床试验阶...  相似文献   

7.
2019年12月,武汉市发现多例不明原因肺炎病例,随后被证实由一种新型冠状病毒引起。2020年2月11日WHO将该疾病命名为COVID-19(Coronavirus disease 2019)。此后,疫情蔓延至全国。全球多个国家和地区也出现了COVID-19。COVID-19主要经呼吸道飞沫和密切接触传播,潜伏期1~14d,多为3~7d,大部分患者症状较轻,少数患者出现呼吸困难和/或低氧血症,甚至进展为急性呼吸窘迫综合征、多器官功能衰竭等。目前尚无针对该疾病的疫苗和特异性治疗药物。本文将从病原学、流行病学、致病机制、预防与治疗等方面对COVID-19进行综述,希望对疫情防控、药物和疫苗研究提供参考。  相似文献   

8.
世界卫生组织已宣布新型冠状病毒感染(coronavirus disease 2019,COVID-19)的爆发为全球大流行。中和抗体和小分子抑制剂在预防及治疗COVID-19中发挥重要作用。尽管已开发出了多种中和抗体以及疫苗,但是随着病原体严重急性呼吸综合征冠状病毒2(severe acute respiratory syndrome coronavirus 2,SARS-CoV-2)的不断变异,现有的抗体及疫苗面临巨大的挑战。小分子抑制剂主要通过干扰病毒与宿主的结合以及病毒自身的复制达到消灭病毒以及抑制病毒感染的作用,并且对SARS-CoV-2突变株具有广谱抑制作用,是当前研究的热点。近年来国内外学者对SARS-CoV-2的小分子抑制剂做了大量的研究工作,本文根据中和抗体识别的抗原表位以及小分子抑制剂的作用机制分别对用于预防及治疗COVID-19的中和抗体和小分子抑制剂进行综述,讨论其研究现状,并展望小分子抑制剂的应用前景,以期为该领域的进一步研究提供参考。  相似文献   

9.
跨入202年,由新型冠状病毒(COVID-19)引发的疫情仍在全球持续肆虐,多种新冠疫苗的研制成功并紧急投入使用无疑成为全球抗疫的关键一环。辉瑞(Pfizer)BioNTech和Moderma使用mRNA(messenger RNA)技术开发COVID-19疫苗被证实有效性达90%以上。传统的疫苗将减毒或灭活的病菌注入人体,触发免疫反应,让人体学会了当遇到了真正的火力全开的病菌的时候如何反击。  相似文献   

10.
自2019年12月湖北省武汉地区出现新型冠状病毒肺炎(COVID-19)以来,疫情发展迅速,对我国乃至全球公共卫生构成巨大威胁,造成巨大经济损失和社会恐慌。重症是导致COVID-19死亡的最主要原因,2020年2月19日国家卫生健康委员会出台《新冠肺炎康复者恢复期血浆临床治疗方案(试行第一版)》,主要用于医治重型、危重型病例。血浆疗法这一治疗策略可追溯到20世纪,在目前没有有效疫苗和药物的情况下,仍可使用患者恢复期血浆预防或治疗传染病,阻止疾病恶化,降低病死率。本文对新型冠状病毒进行简要介绍,回顾以往血浆疗法在冠状病毒治疗方面的应用及成效,并分析了血浆疗法的局限性。进一步结合目前抗病毒治疗性抗体的研究现状及发展优势,对COVID-19的抗体治疗提出思考。  相似文献   

11.
Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) continues to sweep the world, causing infection of millions and death of hundreds of thousands. The respiratory disease that it caused, COVID-19 (stands for coronavirus disease in 2019), has similar clinical symptoms with other two CoV diseases, severe acute respiratory syndrome and Middle East respiratory syndrome (SARS and MERS), of which causative viruses are SARS-CoV and MERS-CoV, respectively. These three CoVs resulting diseases also share many clinical symptoms with other respiratory diseases caused by influenza A viruses (IAVs). Since both CoVs and IAVs are general pathogens responsible for seasonal cold, in the next few months, during the changing of seasons, clinicians and public heath may have to distinguish COVID-19 pneumonia from other kinds of viral pneumonia. This is a discussion and comparison of the virus structures, transmission characteristics, clinical symptoms, diagnosis, pathological changes, treatment and prevention of the two kinds of viruses, CoVs and IAVs. It hopes to provide information for practitioners in the medical field during the epidemic season.  相似文献   

12.
2019新型冠状病毒的暴发持续至今,导致了世界各地数以百万计的感染个例,更夺去了数十万人的生命。世界卫生组织在2020年2月将此病毒引起的疾病定名为2019冠状病毒病(Coronavirus disease 2019,COVID-19),而国际病毒分类委员会也将此病毒命名为SARS-Co V-2。COVID-19的典型临床症状类似感冒,少数病人可发展为重症甚至死亡。21世纪以来,人类冠状病毒有3次大暴发,分别是2003年暴发的严重急性呼吸综合征(SARS)、2012年暴发的中东呼吸综合征(MERS)和本次的新型肺炎。自2003年以来,对SARS和MERS冠状病毒的研究从未间断,对其自然起源、致病机理、药物筛选及疫苗研发等已取得一定进展。鉴于SARS-Co V-2和SARS-Co V的基因组序列高度相似,以往对SARS-Co V的研究对深入探讨SARS-Co V-2生物学特性、诊断、治疗和防控有很强的借鉴性。文中通过回顾过往的研究进展,对比SARS-Co V和SARS-Co V-2的生物学特性,分析当前亟需的防控和诊疗措施,探讨疫苗研发所面对的一些难题,并展望疫情发展趋势及对本领域研究与开发的主要挑战,冀为我国和全世界有效控制COVID-19疫情提供参考。  相似文献   

13.
严重急性呼吸综合征2019(sever acute respiratory syndrome,SARS)、中东呼吸综合征(Middle East respiratory syndrome,MERS)和2019冠状病毒病(corona virus disease 2019,COVID-19)对全世界人民造成了严重的经济损失和精神伤害。鉴于SARS再无新发病例,研究进展少,本文着重介绍MERS和COVID-19的治疗。MERS和COVID-19的治疗大同小异,曾在临床使用核苷类似物、洛匹那韦/利托那韦、中和抗体、糖皮质激素及其他潜在疗法(旧药新用)。因COVID-19流行范围广,感染人数多,涌现出一些新药,例如瑞德西韦、REGN-CoV2抗体、LY-CoV555抗体等,但目前效果仍欠佳,临床诊疗方案也尚待完善。本文就SARS、MERS和COVID-19治疗的研究进展进行综述,为进一步研究其治疗方案、提高治疗效果进而降低病死率提供理论基础。  相似文献   

14.
2019年底于中国武汉暴发的新型冠状病毒肺炎疫情来势凶猛,迅速蔓延全球,并被世界卫生组织列为“国际关注的突发公共卫生事件”,给全人类的健康及经济发展造成难以估量的损害。新型冠状病毒对人群普遍易感且传染性强,在无特效药物及治疗手段的情况下,疫苗接种是防控COVID-19疫情最有效且最经济的途径。目前全球疫苗研发正在加速进行,各国之间通力合作,共同应对此次疫情。主要对目前正在研发的针对SARS-CoV-2的灭活疫苗、病毒载体疫苗、基因工程重组亚单位疫苗、核酸疫苗的研究进展进行综述。  相似文献   

15.
Dear Editor, The rapid emergence and persistence of the pandemic caused by severe acute respiratory syndrome coronavirus 2(SARS-CoV-2) has had enormous impacts on global health and the economy.Effective vaccines against SARS-CoV-2 are urgently needed to control the coronavirus disease 2019(COVID-19) pandemic,and multiple vaccines have been found to be efficacious in preventing symptomatic COVID-19(Polack et al.,2020;Wu et al.,2020;Jones and Roy,2021).We have developed a traditional beta-propiolactone-inacti-vated aluminum hydroxide-adjuvanted whole-virion SARS-CoV-2 vaccine (BBIBP-CorV),which elicited protective immune responses in clinical trials (Wang et al.,2020;Xia et al.,2021).The vaccine has been granted conditional approvals or emergency use authorizations (EUAs) in China and other countries.  相似文献   

16.
The emergence of coronavirus disease 2019 (COVID-19) pandemic in Wuhan city, China at the end of 2019 made it urgent to identify the origin of the causal pathogen and its molecular evolution, to appropriately design an effective vaccine. This study analyzes the evolutionary background of the severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2 or SARS-2) in accordance with its close relative SARS-CoV (SARS-1), which was emerged in 2002. A comparative genomic and proteomic study was conducted on SARS-2, SARS-1, and Middle East respiratory syndrome coronavirus (MERS), which was emerged in 2012. In silico analysis inferred the genetic variability among the tested viruses. The SARS-1 genome harbored 11 genes encoding 12 proteins, while SARS-2 genome contained only 10 genes encoding for 10 proteins. MERS genome contained 11 genes encoding 11 proteins. The analysis also revealed a slight variation in the whole genome size of SARS-2 comparing to its siblings resulting from sequential insertions and deletions (indels) throughout the viral genome particularly ORF1AB, spike, ORF10 and ORF8. The effective indels were observed in the gene encoding the spike protein that is responsible for viral attachment to the angiotensin-converting enzyme 2 (ACE2) cell receptor and initiating infection. These indels are responsible for the newly emerging COVID-19 variants αCoV, βCoV, γCoV and δCoV. Nowadays, few effective COVID-19 vaccines developed based on spike (S) glycoprotein were approved and become available worldwide. Currently available vaccines can relatively prevent the spread of COVID-19 and suppress the disease. The traditional (killed or attenuated virus vaccine and antibody-based vaccine) and innovated vaccine production technologies (RNA- and DNA-based vaccines and viral vectors) are summarized in this review. We finally highlight the most common questions related to COVID-19 disease and the benefits of getting vaccinated.  相似文献   

17.
The coronavirus disease 2019 (COVID-19) pandemic was caused by a novel coronavirus, severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2). This virus has challenged civilization and modern science in ways that few infectious diseases and natural disasters have previously, causing globally significant human morbidity and mortality and triggering economic downturns across financial markets that will be dealt with for generations. Despite this, the pandemic has also brought an opportunity for humanity to come together and participate in a shared scientific investigation. Clinically, SARS-CoV-2 is associated with lower mortality rates than other recently emerged coronaviruses, such as SARS-CoV and the Middle East respiratory syndrome coronavirus (MERS-CoV). However, SARS-CoV-2 exhibits efficient human-to-human spread, with transmission often occurring before symptom recognition; this feature averts containment strategies that had worked previously for SARS-CoV and MERS-CoV. Severe COVID-19 disease is characterized by dysregulated inflammatory responses associated with pulmonary congestion and intravascular coagulopathy leading to pneumonia, vascular insults, and multiorgan disease. Approaches to treatment have combined supportive care with antivirals, such as remdesivir, with immunomodulatory medications, including corticosteroids and cytokine-blocking antibody therapies; these treatments have advanced rapidly through clinical trials. Innovative approaches to vaccine development have facilitated rapid advances in design, testing, and distribution. Much remains to be learned about SARS-CoV-2 and COVID-19, and further biomedical research is necessary, including comparative medicine studies in animal models. This overview of COVID-19 in humans will highlight important aspects of disease, relevant pathophysiology, underlying immunology, and therapeutics that have been developed to date.

In December 2019, a cluster of cases of pneumonia without a clear etiology occurred in Wuhan, China. With remarkable speed and efficiency, the etiology of this illness was soon identified as a novel coronavirus; the complete viral genome was sequenced and published on January 10, 2020.182 These events introduced the world to coronavirus disease 2019 (COVID-19). The disease, now known to be caused by a novel coronavirus, severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), has developed into the most significant pandemic of recent times. In less than a year since the virus was first recognized, multiple candidate vaccines were developed worldwide, and some of them rapidly progressed to clinical trials and widespread administration. As the pandemic continues, a number of sequence variants of the virus have emerged around the world. This continued viral evolution highlights the need for continued biomedical research to facilitate understanding of the pathogenesis of COVID-19, seeking innovative therapeutic and preventative strategies for the current and possibly future pandemics. This article will review aspects of SARS-CoV-2 infection of humans and COVID-19, focusing on important aspects of clinical disease, pathophysiology, immunology, and the development of therapeutic and preventative measures to provide context for discussion of the animal models used to study SARS-CoV-2 and COVID-19.  相似文献   

18.
A  Ruhan  Wang  Huijuan  Wang  Wenling  Tan  Wenjie 《中国病毒学》2020,35(6):699-712
Virologica Sinica - The on-going global pandemic of coronavirus disease 2019 (COVID-19) caused by a novel coronavirus called severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) has been...  相似文献   

19.
Biochemistry (Moscow) - The novel coronavirus disease-2019 (COVID-19) pandemic, caused by severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), has been a major public health emergency...  相似文献   

20.
It has been more than a year since severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) first emerged. Many studies have provided insights into the various aspects of the immune response in coronavirus disease 2019 (COVID-19). Especially for antibody treatment and vaccine development, humoral immunity to SARS-CoV-2 has been studied extensively, though there is still much that is unknown and controversial. Here, we introduce key discoveries on the humoral immune responses in COVID-19, including the immune dynamics of antibody responses and correlations with disease severity, neutralizing antibodies and their cross-reactivity, how long the antibody and memory B-cell responses last, aberrant autoreactive antibodies generated in COVID-19 patients, and the efficacy of currently available therapeutic antibodies and vaccines against circulating SARS-CoV-2 variants, and highlight gaps in the current knowledge.  相似文献   

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