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T helper cell activation and human retroviral pathogenesis. 辅助T细胞活化与人类逆转录病毒发病机制。
Pub Date : 1996-12-01 DOI: 10.1128/mr.60.4.722-742.1996
K F Copeland, J L Heeney

T helper (Th) cells are of central importance in regulating many critical immune effector mechanisms. The profile of cytokines produced by Th cells correlates with the type of effector cells induced during the immune response to foreign antigen. Th1 cells induce the cell-mediated immune response, while Th2 cells drive antibody production. Th cells are the preferential targets of human retroviruses. Infections with human T-cell leukemia virus (HTLV) or human immunodeficiency virus (HIV) result in the expansion of Th cells by the action of HTLV (adult T-cell leukemia) or the progressive loss of T cells by the action of HIV (AIDS). Both retrovirus infections impart a high-level activation state in the host immune cells as well as systemically. However, diverging responses to this activation state have contrasting effects on the Th-cell population. In HIV infection, Th-cell loss has been attributed to several mechanisms, including a selective elimination of cells by apoptosis. The induction of apoptosis in HIV infection is complex, with many different pathways able to induce cell death. In contrast, infection of Th cells with HTLV-1 affords the cell a protective advantage against apoptosis. This advantage may allow the cell to escape immune surveillance, providing the opportunity for the development of Th-cell cancer. In this review, we will discuss the impact of Th-cell activation and general immune activation on human retrovirus expression with a focus upon Th-cell function and the progression to disease.

辅助性T细胞在调节许多关键的免疫效应机制中起着至关重要的作用。由Th细胞产生的细胞因子谱与免疫应答过程中诱导的效应细胞类型相关。Th1细胞诱导细胞介导的免疫反应,而Th2细胞驱动抗体的产生。这些细胞是人类逆转录病毒的优先目标。感染人类T细胞白血病病毒(HTLV)或人类免疫缺陷病毒(HIV)导致HTLV(成人T细胞白血病)作用下的T细胞扩增或HIV(艾滋病)作用下的T细胞逐渐丧失。这两种逆转录病毒感染在宿主免疫细胞和系统中都具有高水平的激活状态。然而,对这种激活状态的不同反应对th细胞群有不同的影响。在HIV感染中,th细胞的损失可归因于几种机制,包括细胞凋亡的选择性消除。HIV感染诱导细胞凋亡是复杂的,有许多不同的途径能够诱导细胞死亡。相反,HTLV-1感染Th细胞对细胞凋亡具有保护作用。这种优势可能使细胞逃避免疫监视,为th细胞癌的发展提供了机会。在这篇综述中,我们将讨论th细胞激活和一般免疫激活对人类逆转录病毒表达的影响,重点关注th细胞的功能和疾病的进展。
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引用次数: 3
The secretory pathway of protists: spatial and functional organization and evolution. 原生生物分泌途径:空间与功能组织与演化。
Pub Date : 1996-12-01 DOI: 10.1128/MMBR.60.4.697-721.1996
B. Becker, M. Melkonian
All cells secrete a diversity of macromolecules to modify their environment or to protect themselves. Eukaryotic cells have evolved a complex secretory pathway consisting of several membrane-bound compartments which contain specific sets of proteins. Experimental work on the secretory pathway has focused mainly on mammalian cell lines or on yeasts. Now, some general principles of the secretory pathway have become clear, and most components of the secretory pathway are conserved between yeast cells and mammalian cells. However, the structure and function of the secretory system in protists have been less extensively studied. In this review, we summarize the current knowledge about the secretory pathway of five different groups of protists: Giardia lamblia, one of the earliest lines of eukaryotic evolution, kinetoplastids, the slime mold Dictyostelium discoideum, and two lineages within the "crown" of eukaryotic cell evolution, the alveolates (ciliates and Plasmodium species) and the green algae. Comparison of these systems with the mammalian and yeast system shows that most elements of the secretory pathway were presumably present in the earliest eukaryotic organisms. However, one element of the secretory pathway shows considerable variation: the presence of a Golgi stack and the number of cisternae within a stack. We suggest that the functional separation of the plasma membrane from the nucleus-endoplasmic reticulum system during evolution required a sorting compartment, which became the Golgi apparatus. Once a Golgi apparatus was established, it was adapted to the various needs of the different organisms.
所有细胞都分泌各种各样的大分子来改变环境或保护自己。真核细胞已经进化出一个复杂的分泌途径,由几个膜结合的室组成,这些室含有特定的蛋白质集。关于分泌途径的实验工作主要集中在哺乳动物细胞系或酵母上。现在,分泌途径的一些一般原理已经变得清晰,并且分泌途径的大部分成分在酵母细胞和哺乳动物细胞之间是保守的。然而,对原生生物分泌系统的结构和功能研究较少。本文综述了五种不同类型原生生物的分泌途径,包括真核细胞进化最早的细胞系之一蓝氏贾第鞭毛虫、动质体、黏菌盘状体和真核细胞进化“王冠”中的两个细胞系:肺泡菌(纤毛虫和疟原虫)和绿藻。这些系统与哺乳动物和酵母系统的比较表明,分泌途径的大多数元素可能存在于最早的真核生物中。然而,分泌途径的一个要素显示出相当大的变化:高尔基体堆叠的存在和堆叠内池的数量。我们认为,在进化过程中,质膜与核-内质网系统的功能分离需要一个分选室,这就是高尔基体。一旦高尔基体建立起来,它就会适应不同生物体的各种需要。
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引用次数: 88
Soil microorganisms as controllers of atmospheric trace gases (H2, CO, CH4, OCS, N2O, and NO). 土壤微生物作为大气微量气体(H2、CO、CH4、OCS、N2O和NO)的控制者。
Pub Date : 1996-12-01 DOI: 10.1128/mr.60.4.609-640.1996
R Conrad

Production and consumption processes in soils contribute to the global cycles of many trace gases (CH4, CO, OCS, H2, N2O, and NO) that are relevant for atmospheric chemistry and climate. Soil microbial processes contribute substantially to the budgets of atmospheric trace gases. The flux of trace gases between soil and atmosphere is usually the result of simultaneously operating production and consumption processes in soil: The relevant processes are not yet proven with absolute certainty, but the following are likely for trace gas consumption: H2 oxidation by abiontic soil enzymes; CO cooxidation by the ammonium monooxygenase of nitrifying bacteria; CH4 oxidation by unknown methanotrophic bacteria that utilize CH4 for growth; OCS hydrolysis by bacteria containing carbonic anhydrase; N2O reduction to N2 by denitrifying bacteria; NO consumption by either reduction to N2O in denitrifiers or oxidation to nitrate in heterotrophic bacteria. Wetland soils, in contrast to upland soils are generally anoxic and thus support the production of trace gases (H2, CO, CH4, N2O, and NO) by anaerobic bacteria such as fermenters, methanogens, acetogens, sulfate reducers, and denitrifiers. Methane is the dominant gaseous product of anaerobic degradation of organic matter and is released into the atmosphere, whereas the other trace gases are only intermediates, which are mostly cycled within the anoxic habitat. A significant percentage of the produced methane is oxidized by methanotrophic bacteria at anoxic-oxic interfaces such as the soil surface and the root surface of aquatic plants that serve as conduits for O2 transport into and CH4 transport out of the wetland soils. The dominant production processes in upland soils are different from those in wetland soils and include H2 production by biological N2 fixation, CO production by chemical decomposition of soil organic matter, and NO and N2O production by nitrification and denitrification. The processes responsible for CH4 production in upland soils are completely unclear, as are the OCS production processes in general. A problem for future research is the attribution of trace gas metabolic processes not only to functional groups of microorganisms but also to particular taxa. Thus, it is completely unclear how important microbial diversity is for the control of trace gas flux at the ecosystem level. However, different microbial communities may be part of the reason for differences in trace gas metabolism, e.g., effects of nitrogen fertilizers on CH4 uptake by soil; decrease of CH4 production with decreasing temperature; or different rates and modes of NO and N2O production in different soils and under different conditions.

土壤的生产和消耗过程促进了与大气化学和气候相关的许多微量气体(CH4、CO、OCS、H2、N2O和NO)的全球循环。土壤微生物过程对大气微量气体的收支有很大贡献。土壤和大气之间的微量气体通量通常是土壤中生产和消耗过程同时进行的结果,相关过程尚未得到绝对肯定的证明,但微量气体消耗可能有以下几种:非离子型土壤酶H2氧化;硝化菌单氧化铵酶对CO的氧化作用利用甲烷生长的未知甲烷营养细菌氧化甲烷;含碳酸酐酶细菌对OCS的水解研究反硝化菌将N2O还原为N2;在异养细菌中通过还原成N2O或氧化成硝酸盐来消耗NO。与高地土壤相比,湿地土壤通常是缺氧的,因此支持厌氧细菌(如发酵菌、产甲烷菌、产醋酸菌、硫酸盐还原剂和反硝化菌)产生微量气体(H2、CO、CH4、N2O和NO)。甲烷是有机物厌氧降解的主要气体产物,释放到大气中,而其他微量气体只是中间产物,它们大多在缺氧栖息地内循环。产生的甲烷有很大一部分在缺氧-缺氧界面(如土壤表面和水生植物根表面)被甲烷营养细菌氧化,这些界面是湿地土壤输送O2和输送CH4的管道。旱地土壤的主要生产过程与湿地土壤不同,主要包括生物固氮生产H2、土壤有机质化学分解生产CO以及硝化和反硝化生产NO和N2O。旱地土壤中产生CH4的过程是完全不清楚的,OCS的生产过程也是如此。未来研究的一个问题是微量气体代谢过程的归属不仅是微生物的功能群,而且是特定的分类群。因此,在生态系统水平上,微生物多样性对控制微量气体通量的重要性是完全不清楚的。然而,不同的微生物群落可能是造成微量气体代谢差异的部分原因,例如氮肥对土壤吸收CH4的影响;CH4产率随温度降低而降低;或在不同土壤和不同条件下产生NO和N2O的不同速率和方式。
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引用次数: 445
The secretory pathway of protists: spatial and functional organization and evolution. 原生生物分泌途径:空间与功能组织与演化。
Pub Date : 1996-12-01 DOI: 10.1128/mr.60.4.697-721.1996
B Becker, M Melkonian

All cells secrete a diversity of macromolecules to modify their environment or to protect themselves. Eukaryotic cells have evolved a complex secretory pathway consisting of several membrane-bound compartments which contain specific sets of proteins. Experimental work on the secretory pathway has focused mainly on mammalian cell lines or on yeasts. Now, some general principles of the secretory pathway have become clear, and most components of the secretory pathway are conserved between yeast cells and mammalian cells. However, the structure and function of the secretory system in protists have been less extensively studied. In this review, we summarize the current knowledge about the secretory pathway of five different groups of protists: Giardia lamblia, one of the earliest lines of eukaryotic evolution, kinetoplastids, the slime mold Dictyostelium discoideum, and two lineages within the "crown" of eukaryotic cell evolution, the alveolates (ciliates and Plasmodium species) and the green algae. Comparison of these systems with the mammalian and yeast system shows that most elements of the secretory pathway were presumably present in the earliest eukaryotic organisms. However, one element of the secretory pathway shows considerable variation: the presence of a Golgi stack and the number of cisternae within a stack. We suggest that the functional separation of the plasma membrane from the nucleus-endoplasmic reticulum system during evolution required a sorting compartment, which became the Golgi apparatus. Once a Golgi apparatus was established, it was adapted to the various needs of the different organisms.

所有细胞都分泌各种各样的大分子来改变环境或保护自己。真核细胞已经进化出一个复杂的分泌途径,由几个膜结合的室组成,这些室含有特定的蛋白质集。关于分泌途径的实验工作主要集中在哺乳动物细胞系或酵母上。现在,分泌途径的一些一般原理已经变得清晰,并且分泌途径的大部分成分在酵母细胞和哺乳动物细胞之间是保守的。然而,对原生生物分泌系统的结构和功能研究较少。本文综述了五种不同类型原生生物的分泌途径,包括真核细胞进化最早的细胞系之一蓝氏贾第鞭毛虫、动质体、黏菌盘状体和真核细胞进化“王冠”中的两个细胞系:肺泡菌(纤毛虫和疟原虫)和绿藻。这些系统与哺乳动物和酵母系统的比较表明,分泌途径的大多数元素可能存在于最早的真核生物中。然而,分泌途径的一个要素显示出相当大的变化:高尔基体堆叠的存在和堆叠内池的数量。我们认为,在进化过程中,质膜与核-内质网系统的功能分离需要一个分选室,这就是高尔基体。一旦高尔基体建立起来,它就会适应不同生物体的各种需要。
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引用次数: 0
Flow cytometry and cell sorting of heterogeneous microbial populations: the importance of single-cell analyses. 流式细胞术和异质微生物群体的细胞分选:单细胞分析的重要性。
Pub Date : 1996-12-01 DOI: 10.1128/mr.60.4.641-696.1996
H M Davey, D B Kell

The most fundamental questions such as whether a cell is alive, in the sense of being able to divide or to form a colony, may sometimes be very hard to answer, since even axenic microbial cultures are extremely heterogeneous. Analyses that seek to correlate such things as viability, which is a property of an individual cell, with macroscopic measurements of culture variables such as ATP content, respiratory activity, and so on, must inevitably fail. It is therefore necessary to make physiological measurements on individual cells. Flow cytometry is such a technique, which allows one to analyze cells rapidly and individually and permits the quantitative analysis of microbial heterogeneity. It therefore offers many advantages over conventional measurements for both routine and more exploratory analyses of microbial properties. While the technique has been widely applied to the study of mammalian cells, is use in microbiology has until recently been much more limited, largely because of the smaller size of microbes and the consequently smaller optical signals obtainable from them. Since these technical barriers no longer hold, flow cytometry with appropriate stains has been used for the rapid discrimination and identification of microbial cells, for the rapid assessment of viability and of the heterogeneous distributions of a wealth of other more detailed physiological properties, for the analysis of antimicrobial drug-cell interactions, and for the isolation of high-yielding strains of biotechnological interest. Flow cytometric analyses provide an abundance of multivariate data, and special methods have been devised to exploit these. Ongoing advances mean that modern flow cytometers may now be used by nonspecialists to effect a renaissance in our understanding of microbial heterogeneity.

最基本的问题,如细胞是否活着,在能够分裂或形成菌落的意义上,有时可能很难回答,因为即使是无菌微生物培养物也是极其异质的。试图将活力(单个细胞的特性)与培养变量(如ATP含量、呼吸活动等)的宏观测量相关联的分析必然会失败。因此,有必要对单个细胞进行生理测量。流式细胞术就是这样一种技术,它允许人们对细胞进行快速和单独的分析,并允许对微生物异质性进行定量分析。因此,它提供了许多优势,比常规的测量和更多的探索性分析微生物特性。虽然这项技术已被广泛应用于哺乳动物细胞的研究,但直到最近,它在微生物学中的应用还受到很大的限制,这主要是因为微生物的尺寸较小,因此从它们身上获得的光信号也较小。由于这些技术障碍不再存在,使用适当染色的流式细胞术已被用于微生物细胞的快速区分和鉴定,用于快速评估活力和丰富的其他更详细的生理特性的异质分布,用于抗菌药物-细胞相互作用的分析,以及用于分离生物技术感兴趣的高产菌株。流式细胞术分析提供了丰富的多元数据,并设计了特殊的方法来利用这些数据。正在进行的进展意味着现代流式细胞仪现在可以被非专业人员使用,以实现我们对微生物异质性理解的复兴。
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引用次数: 68
T helper cell activation and human retroviral pathogenesis. 辅助T细胞活化与人类逆转录病毒发病机制。
Pub Date : 1996-12-01 DOI: 10.1128/MMBR.60.4.722-742.1996
K. Copeland, J. Heeney
T helper (Th) cells are of central importance in regulating many critical immune effector mechanisms. The profile of cytokines produced by Th cells correlates with the type of effector cells induced during the immune response to foreign antigen. Th1 cells induce the cell-mediated immune response, while Th2 cells drive antibody production. Th cells are the preferential targets of human retroviruses. Infections with human T-cell leukemia virus (HTLV) or human immunodeficiency virus (HIV) result in the expansion of Th cells by the action of HTLV (adult T-cell leukemia) or the progressive loss of T cells by the action of HIV (AIDS). Both retrovirus infections impart a high-level activation state in the host immune cells as well as systemically. However, diverging responses to this activation state have contrasting effects on the Th-cell population. In HIV infection, Th-cell loss has been attributed to several mechanisms, including a selective elimination of cells by apoptosis. The induction of apoptosis in HIV infection is complex, with many different pathways able to induce cell death. In contrast, infection of Th cells with HTLV-1 affords the cell a protective advantage against apoptosis. This advantage may allow the cell to escape immune surveillance, providing the opportunity for the development of Th-cell cancer. In this review, we will discuss the impact of Th-cell activation and general immune activation on human retrovirus expression with a focus upon Th-cell function and the progression to disease.
辅助性T细胞在调节许多关键的免疫效应机制中起着至关重要的作用。由Th细胞产生的细胞因子的特征与在对外来抗原的免疫应答中诱导的效应细胞类型相关。Th1细胞诱导细胞介导的免疫反应,而Th2细胞驱动抗体的产生。这些细胞是人类逆转录病毒的优先目标。感染人类T细胞白血病病毒(HTLV)或人类免疫缺陷病毒(HIV)导致HTLV(成人T细胞白血病)作用下的T细胞扩增或HIV(艾滋病)作用下的T细胞逐渐丧失。这两种逆转录病毒感染在宿主免疫细胞和系统中都具有高水平的激活状态。然而,对这种激活状态的不同反应对th细胞群有不同的影响。在HIV感染中,th细胞的损失可归因于几种机制,包括细胞凋亡的选择性消除。HIV感染诱导细胞凋亡是复杂的,有许多不同的途径能够诱导细胞死亡。相反,HTLV-1感染Th细胞对细胞凋亡具有保护作用。这种优势可能使细胞逃避免疫监视,为th细胞癌的发展提供了机会。在这篇综述中,我们将讨论th细胞激活和一般免疫激活对人类逆转录病毒表达的影响,重点关注th细胞的功能和疾病的进展。
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引用次数: 73
Flow cytometry and cell sorting of heterogeneous microbial populations: the importance of single-cell analyses. 流式细胞术和异质微生物群体的细胞分选:单细胞分析的重要性。
Pub Date : 1996-12-01 DOI: 10.1128/MMBR.60.4.641-696.1996
H. Davey, D. Kell
The most fundamental questions such as whether a cell is alive, in the sense of being able to divide or to form a colony, may sometimes be very hard to answer, since even axenic microbial cultures are extremely heterogeneous. Analyses that seek to correlate such things as viability, which is a property of an individual cell, with macroscopic measurements of culture variables such as ATP content, respiratory activity, and so on, must inevitably fail. It is therefore necessary to make physiological measurements on individual cells. Flow cytometry is such a technique, which allows one to analyze cells rapidly and individually and permits the quantitative analysis of microbial heterogeneity. It therefore offers many advantages over conventional measurements for both routine and more exploratory analyses of microbial properties. While the technique has been widely applied to the study of mammalian cells, is use in microbiology has until recently been much more limited, largely because of the smaller size of microbes and the consequently smaller optical signals obtainable from them. Since these technical barriers no longer hold, flow cytometry with appropriate stains has been used for the rapid discrimination and identification of microbial cells, for the rapid assessment of viability and of the heterogeneous distributions of a wealth of other more detailed physiological properties, for the analysis of antimicrobial drug-cell interactions, and for the isolation of high-yielding strains of biotechnological interest. Flow cytometric analyses provide an abundance of multivariate data, and special methods have been devised to exploit these. Ongoing advances mean that modern flow cytometers may now be used by nonspecialists to effect a renaissance in our understanding of microbial heterogeneity.
最基本的问题,如细胞是否活着,在能够分裂或形成菌落的意义上,有时可能很难回答,因为即使是无菌微生物培养物也是极其异质的。试图将活力(单个细胞的特性)与培养变量(如ATP含量、呼吸活动等)的宏观测量相关联的分析必然会失败。因此,有必要对单个细胞进行生理测量。流式细胞术就是这样一种技术,它允许人们对细胞进行快速和单独的分析,并允许对微生物异质性进行定量分析。因此,它提供了许多优势,比常规的测量和更多的探索性分析微生物特性。虽然这项技术已被广泛应用于哺乳动物细胞的研究,但直到最近,它在微生物学中的应用还受到很大的限制,这主要是因为微生物的尺寸较小,因此从它们身上获得的光信号也较小。由于这些技术障碍不再存在,使用适当染色的流式细胞术已被用于微生物细胞的快速区分和鉴定,用于快速评估活力和丰富的其他更详细的生理特性的异质分布,用于抗菌药物-细胞相互作用的分析,以及用于分离生物技术感兴趣的高产菌株。流式细胞术分析提供了丰富的多元数据,并设计了特殊的方法来利用这些数据。正在进行的进展意味着现代流式细胞仪现在可以被非专业人员使用,以实现我们对微生物异质性理解的复兴。
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引用次数: 792
Proton-dependent multidrug efflux systems. 依赖质子的多药物外排系统。
Pub Date : 1996-12-01 DOI: 10.1128/mr.60.4.575-608.1996
I T Paulsen, M H Brown, R A Skurray

Multidrug efflux systems display the ability to transport a variety of structurally unrelated drugs from a cell and consequently are capable of conferring resistance to a diverse range of chemotherapeutic agents. This review examines multidrug efflux systems which use the proton motive force to drive drug transport. These proteins are likely to operate as multidrug/proton antiporters and have been identified in both prokaryotes and eukaryotes. Such proton-dependent multidrug efflux proteins belong to three distinct families or superfamilies of transport proteins: the major facilitator superfamily (MFS), the small multidrug resistance (SMR) family, and the resistance/ nodulation/cell division (RND) family. The MFS consists of symporters, antiporters, and uniporters with either 12 or 14 transmembrane-spanning segments (TMS), and we show that within the MFS, three separate families include various multidrug/proton antiport proteins. The SMR family consists of proteins with four TMS, and the multidrug efflux proteins within this family are the smallest known secondary transporters. The RND family consists of 12-TMS transport proteins and includes a number of multidrug efflux proteins with particularly broad substrate specificity. In gram-negative bacteria, some multidrug efflux systems require two auxiliary constituents, which might enable drug transport to occur across both membranes of the cell envelope. These auxiliary constituents belong to the membrane fusion protein and the outer membrane factor families, respectively. This review examines in detail each of the characterized proton-linked multidrug efflux systems. The molecular basis of the broad substrate specificity of these transporters is discussed. The surprisingly wide distribution of multidrug efflux systems and their multiplicity in single organisms, with Escherichia coli, for instance, possessing at least nine proton-dependent multidrug efflux systems with overlapping specificities, is examined. We also discuss whether the normal physiological role of the multidrug efflux systems is to protect the cell from toxic compounds or whether they fulfil primary functions unrelated to drug resistance and only efflux multiple drugs fortuitously or opportunistically.

多药外排系统显示出从细胞中转运多种结构不相关的药物的能力,因此能够对多种化疗药物产生耐药性。本文综述了利用质子动力驱动药物转运的多药外排系统。这些蛋白可能作为多药物/质子反转运蛋白起作用,并已在原核生物和真核生物中发现。这种质子依赖的多药外排蛋白属于三个不同的转运蛋白家族或超家族:主要促进剂超家族(MFS)、小多药耐药家族(SMR)和耐药/结瘤/细胞分裂家族(RND)。MFS由正转运蛋白、反转运蛋白和单转运蛋白组成,它们具有12或14个跨膜片段(TMS),我们发现在MFS中,三个独立的家族包括各种多药物/质子反转运蛋白。SMR家族由具有4个TMS的蛋白质组成,该家族中的多药物外排蛋白是已知最小的二级转运蛋白。RND家族由12种tms转运蛋白组成,包括许多具有特别广泛底物特异性的多药外排蛋白。在革兰氏阴性菌中,一些多药物外排系统需要两种辅助成分,这可能使药物运输发生在细胞膜的两层。这些辅助成分分别属于膜融合蛋白和外膜因子家族。这篇综述详细检查了每一个特征质子连接的多药物外排系统。讨论了这些转运体广泛的底物特异性的分子基础。多药物外排系统的广泛分布及其在单一生物中的多样性,例如大肠杆菌,具有至少9个具有重叠特异性的质子依赖性多药物外排系统。我们还讨论了多药外排系统的正常生理作用是保护细胞免受有毒化合物的侵害,还是它们履行与耐药性无关的主要功能,只是偶然或机会地外排多种药物。
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引用次数: 253
Soil microorganisms as controllers of atmospheric trace gases (H2, CO, CH4, OCS, N2O, and NO). 土壤微生物作为大气微量气体(H2、CO、CH4、OCS、N2O和NO)的控制者。
Pub Date : 1996-12-01 DOI: 10.1128/MMBR.60.4.609-640.1996
R. Conrad
Production and consumption processes in soils contribute to the global cycles of many trace gases (CH4, CO, OCS, H2, N2O, and NO) that are relevant for atmospheric chemistry and climate. Soil microbial processes contribute substantially to the budgets of atmospheric trace gases. The flux of trace gases between soil and atmosphere is usually the result of simultaneously operating production and consumption processes in soil: The relevant processes are not yet proven with absolute certainty, but the following are likely for trace gas consumption: H2 oxidation by abiontic soil enzymes; CO cooxidation by the ammonium monooxygenase of nitrifying bacteria; CH4 oxidation by unknown methanotrophic bacteria that utilize CH4 for growth; OCS hydrolysis by bacteria containing carbonic anhydrase; N2O reduction to N2 by denitrifying bacteria; NO consumption by either reduction to N2O in denitrifiers or oxidation to nitrate in heterotrophic bacteria. Wetland soils, in contrast to upland soils are generally anoxic and thus support the production of trace gases (H2, CO, CH4, N2O, and NO) by anaerobic bacteria such as fermenters, methanogens, acetogens, sulfate reducers, and denitrifiers. Methane is the dominant gaseous product of anaerobic degradation of organic matter and is released into the atmosphere, whereas the other trace gases are only intermediates, which are mostly cycled within the anoxic habitat. A significant percentage of the produced methane is oxidized by methanotrophic bacteria at anoxic-oxic interfaces such as the soil surface and the root surface of aquatic plants that serve as conduits for O2 transport into and CH4 transport out of the wetland soils. The dominant production processes in upland soils are different from those in wetland soils and include H2 production by biological N2 fixation, CO production by chemical decomposition of soil organic matter, and NO and N2O production by nitrification and denitrification. The processes responsible for CH4 production in upland soils are completely unclear, as are the OCS production processes in general. A problem for future research is the attribution of trace gas metabolic processes not only to functional groups of microorganisms but also to particular taxa. Thus, it is completely unclear how important microbial diversity is for the control of trace gas flux at the ecosystem level. However, different microbial communities may be part of the reason for differences in trace gas metabolism, e.g., effects of nitrogen fertilizers on CH4 uptake by soil; decrease of CH4 production with decreasing temperature; or different rates and modes of NO and N2O production in different soils and under different conditions.
土壤的生产和消耗过程促进了与大气化学和气候相关的许多微量气体(CH4、CO、OCS、H2、N2O和NO)的全球循环。土壤微生物过程对大气微量气体的收支有很大贡献。土壤和大气之间的微量气体通量通常是土壤中生产和消耗过程同时进行的结果,相关过程尚未得到绝对肯定的证明,但微量气体消耗可能有以下几种:非离子型土壤酶H2氧化;硝化菌单氧化铵酶对CO的氧化作用利用甲烷生长的未知甲烷营养细菌氧化甲烷;含碳酸酐酶细菌对OCS的水解研究反硝化菌将N2O还原为N2;在异养细菌中通过还原成N2O或氧化成硝酸盐来消耗NO。与高地土壤相比,湿地土壤通常是缺氧的,因此支持厌氧细菌(如发酵菌、产甲烷菌、产醋酸菌、硫酸盐还原剂和反硝化菌)产生微量气体(H2、CO、CH4、N2O和NO)。甲烷是有机物厌氧降解的主要气体产物,释放到大气中,而其他微量气体只是中间产物,它们大多在缺氧栖息地内循环。产生的甲烷有很大一部分在缺氧-缺氧界面(如土壤表面和水生植物根表面)被甲烷营养细菌氧化,这些界面是湿地土壤输送O2和输送CH4的管道。旱地土壤的主要生产过程与湿地土壤不同,主要包括生物固氮生产H2、土壤有机质化学分解生产CO以及硝化和反硝化生产NO和N2O。旱地土壤中产生CH4的过程是完全不清楚的,OCS的生产过程也是如此。未来研究的一个问题是微量气体代谢过程的归属不仅是微生物的功能群,而且是特定的分类群。因此,在生态系统水平上,微生物多样性对控制微量气体通量的重要性是完全不清楚的。然而,不同的微生物群落可能是造成微量气体代谢差异的部分原因,例如氮肥对土壤吸收CH4的影响;CH4产率随温度降低而降低;或在不同土壤和不同条件下产生NO和N2O的不同速率和方式。
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引用次数: 1525
Virus-encoded superantigens. 病毒编码超级抗原。
Pub Date : 1996-09-01 DOI: 10.1128/mr.60.3.473-482.1996
B T Huber, P N Hsu, N Sutkowski

Superantigens are microbial agents that have a strong effect on the immune response of the host. Their initial target is the T lymphocyte, but a whole cascade of immunological reactions ensues. It is thought that the microbe engages the immune system of the host to its own advantage, to facilitate persistent infection and/or transmission. In this review, we discuss in detail the structure and function of the superantigen encoded by the murine mammary tumor virus, a B-type retrovirus which is the causative agent of mammary carcinoma. We will also outline what has more recently become known about superantigen activity associated with two human herpesviruses, cytomegalovirus and Epstein-Barr virus. It is likely that we have only uncovered the tip of the iceberg in our discovery of microbial superantigens, and we predict a flood of new information on this topic shortly.

超级抗原是对宿主免疫反应有强烈影响的微生物制剂。它们最初的目标是T淋巴细胞,但随后会发生一连串的免疫反应。据认为,这种微生物利用宿主的免疫系统,促进持续感染和/或传播。本文详细讨论了乳腺肿瘤病毒(一种引起乳腺癌的b型逆转录病毒)编码的超抗原的结构和功能。我们还将概述最近已知的与两种人类疱疹病毒,巨细胞病毒和爱泼斯坦-巴尔病毒相关的超抗原活性。很可能我们只是发现了微生物超级抗原的冰山一角,我们预计不久就会有大量关于这一主题的新信息。
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引用次数: 65
期刊
Microbiological reviews
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