Rhizophora Mangle

Bitki adı: Rhizophora Mangle
Bilimsel adı: Rhizophora mangle
Cins: Rhizophora
Familya: Rhizophoraceae

Genel Bilgiler


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Bu bitki için Turhan Baytop kaydı bulunamadı.

Duke – Ethnobotany

Bilgi: Duke USEAGE: M | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Pittier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Liogier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Bliss
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Steinmetz
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Pittier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb28: 24
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb28: 24
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Martinez
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb28: 24
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb28: 24
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb29: 321
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb28: 24
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Duke,1972
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb28: 24
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb28: 24
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Duke,1972
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Uphof
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Steinmetz
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb28: 24
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Duke,1972
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Uphof
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Pittier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb28: 24
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Pittier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Duke,1972
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Liogier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Martinez
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Steinmetz
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Pittier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Hartwell
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Liogier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Martinez
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb28: 24
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Duke,1972
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Martinez
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Liogier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb28: 24
Kaynak: James A. Duke

Bilimsel Araştırmalar

Microsatellites or Single Sequence Repeats (SSRs) are extensively employed in plant genetics studies, using both low and high throughput genotyping approaches. Motivated by the importance of these sequences over the last decades this review aims to address some theoretical aspects of SSRs, including definition, characterization and biological function. The methodologies for the development of SSR loci, genotyping and their applications as molecular markers are also reviewed. Finally, two data surveys are presented. The first was conducted using the main database of Web of Science, prospecting for articles published over the period from 2010 to 2015, resulting in approximately 930 records. The second survey was focused on papers that aimed at SSR marker development, published in the American Journal of Botany's Primer Notes and Protocols in Plant Sciences (over 2013 up to 2015), resulting in a total of 87 publications. This scenario confirms the current relevance of SSRs and indicates their continuous utilization in plant science.

Makaleyi görüntüle
As climate change progresses, we are observing widespread changes in phenotypes in many plant populations. Whether these phenotypic changes are directly caused by climate change, and whether they result from phenotypic plasticity or evolution, are active areas of investigation. Here, we review terrestrial plant studies addressing these questions. Plastic and evolutionary responses to climate change are clearly occurring. Of the 38 studies that met our criteria for inclusion, all found plastic or evolutionary responses, with 26 studies showing both. These responses, however, may be insufficient to keep pace with climate change, as indicated by eight of 12 studies that examined this directly. There is also mixed evidence for whether evolutionary responses are adaptive, and whether they are directly caused by contemporary climatic changes. We discuss factors that will likely influence the extent of plastic and evolutionary responses, including patterns of environmental changes, species' life history characteristics including generation time and breeding system, and degree and direction of gene flow. Future studies with standardized methodologies, especially those that use direct approaches assessing responses to climate change over time, and sharing of data through public databases, will facilitate better predictions of the capacity for plant populations to respond to rapid climate change.

Makaleyi görüntüle
As most biologists are probably aware, technological advances in molecular biology during the last few years have opened up possibilities to rapidly generate large-scale sequencing data from non-model organisms at a reasonable cost. In an era when virtually any study organism can 'go genomic', it is worthwhile to review how this may impact molecular ecology. The first studies to put the next generation sequencing (NGS) to the test in ecologically well-characterized species without previous genome information were published in 2007 and the beginning of 2008. Since then several studies have followed in their footsteps, and a large number are undoubtedly under way. This review focuses on how NGS has been, and can be, applied to ecological, population genetic and conservation genetic studies of non-model species, in which there is no (or very limited) genomic resources. Our aim is to draw attention to the various possibilities that are opening up using the new technologies, but we also highlight some of the pitfalls and drawbacks with these methods. We will try to provide a snapshot of the current state of the art for this rapidly advancing and expanding field of research and give some likely directions for future developments.

Makaleyi görüntüle
Background and aims The architecture of a plant depends on the nature and relative arrangement of each of its parts; it is, at any given time, the expression of an equilibrium between endogenous growth processes and exogenous constraints exerted by the environment. The aim of architectural analysis is, by means of observation and sometimes experimentation, to identify and understand these endogenous processes and to separate them from the plasticity of their expression resulting from external influences. Scope Using the identification of several morphological criteria and considering the plant as a whole, from germination to death, architectural analysis is essentially a detailed, multilevel, comprehensive and dynamic approach to plant development. Despite their recent origin, architectural concepts and analysis methods provide a powerful tool for studying plant form and ontogeny. Completed by precise morphological observations and appropriated quantitative methods of analysis, recent researches in this field have greatly increased our understanding of plant structure and development and have led to the establishment of a real conceptual and methodological framework for plant form and structure analysis and representation. This paper is a summarized update of current knowledge on plant architecture and morphology; its implication and possible role in various aspects of modern plant biology is also discussed.

Makaleyi görüntüle
We discuss the relationship between the dynamically changing tension gradients required to move water rapidly through the xylem conduits of plants and the proportion of conduits lost through embolism as a result of water tension. We consider the implications of this relationship to the water relations of trees. We have compiled quantitative data on the water relations, hydraulic architecture and vulnerability of embolism of four widely different species: Rhizophora mangle, Cassipourea elliptica, Acer saccharum, and Thuja occidentalis. Using these data, we modeled the dynamics of water flow and xylem blockage for these species. The model is specifically focused on the conditions required to generate ;runaway embolism,' whereby the blockage of xylem conduits through embolism leads to reduced hydraulic conductance causing increased tension in the remaining vessels and generating more tension in a vicious circle. The model predicted that all species operate near the point of catastrophic xylem failure due to dynamic water stress. The model supports Zimmermann's plant segmentation hypothesis. Zimmermann suggested that plants are designed hydraulically to sacrifice highly vulnerable minor branches and thus improve the water balance of remaining parts. The model results are discussed in terms of the morphology, hydraulic architecture, eco-physiology, and evolution of woody plants.

Makaleyi görüntüle

Kaynaklar ve Görseller

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