Prosopis Juliflora

Bitki adı: Prosopis Juliflora
Bilimsel adı: Prosopis juliflora
Cins: Prosopis
Familya: Fabaceae

Genel Bilgiler


Duke – Ethnobotany

Bilgi: Duke USEAGE: G | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Liogier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Eb27: 217
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Liogier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Martinez
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Hartwell
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Martinez
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Martinez
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Liogier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Martinez
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Eb31: 349
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Eb31: 349
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Eb31: 349
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Lewis
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Liogier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Liogier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Standley
Kaynak: James A. Duke

Bilimsel Araştırmalar

Reactive oxygen species (ROS) generation is a usual phenomenon in a plant both under a normal and stressed condition. However, under unfavorable or adverse conditions, ROS production exceeds the capacity of the antioxidant defense system. Both non-enzymatic and enzymatic components of the antioxidant defense system either detoxify or scavenge ROS and mitigate their deleterious effects. The Ascorbate-Glutathione (AsA-GSH) pathway, also known as Asada-Halliwell pathway comprises of AsA, GSH, and four enzymes viz. ascorbate peroxidase, monodehydroascorbate reductase, dehydroascorbate reductase, and glutathione reductase, play a vital role in detoxifying ROS. Apart from ROS detoxification, they also interact with other defense systems in plants and protect the plants from various abiotic stress-induced damages. Several plant studies revealed that the upregulation or overexpression of AsA-GSH pathway enzymes and the enhancement of the AsA and GSH levels conferred plants better tolerance to abiotic stresses by reducing the ROS. In this review, we summarize the recent progress of the research on AsA-GSH pathway in terms of oxidative stress tolerance in plants. We also focus on the defense mechanisms as well as molecular interactions.

Makaleyi görüntüle
The proteins that inhibit peptidases are of great importance in medicine and biotechnology, but there has never been a comprehensive system of classification for them. Some of the terminology currently in use is potentially confusing. In the hope of facilitating the exchange, storage and retrieval of information about this important group of proteins, we now describe a system wherein the inhibitor units of the peptidase inhibitors are assigned to 48 families on the basis of similarities detectable at the level of amino acid sequence. Then, on the basis of three-dimensional structures, 31 of the families are assigned to 26 clans. A simple system of nomenclature is introduced for reference to each clan, family and inhibitor. We briefly discuss the specificities and mechanisms of the interactions of the inhibitors in the various families with their target enzymes. The system of families and clans of inhibitors described has been implemented in the MEROPS peptidase database (http://merops.sanger.ac.uk/), and this will provide a mechanism for updating it as new information becomes available.

Makaleyi görüntüle
Eukaryotes often form symbioses with microorganisms. Among these, associations between plants and nitrogen-fixing bacteria are responsible for the nitrogen input into various ecological niches. Plants of many different families have evolved the capacity to develop root or stem nodules with diverse genera of soil bacteria. Of these, symbioses between legumes and rhizobia (Azorhizobium, Bradyrhizobium, Mesorhizobium, and Rhizobium) are the most important from an agricultural perspective. Nitrogen-fixing nodules arise when symbiotic rhizobia penetrate their hosts in a strictly controlled and coordinated manner. Molecular codes are exchanged between the symbionts in the rhizosphere to select compatible rhizobia from pathogens. Entry into the plant is restricted to bacteria that have the "keys" to a succession of legume "doors". Some symbionts intimately associate with many different partners (and are thus promiscuous), while others are more selective and have a narrow host range. For historical reasons, narrow host range has been more intensively investigated than promiscuity. In our view, this has given a false impression of specificity in legume-Rhizobium associations. Rather, we suggest that restricted host ranges are limited to specific niches and represent specialization of widespread and more ancestral promiscuous symbioses. Here we analyze the molecular mechanisms governing symbiotic promiscuity in rhizobia and show that it is controlled by a number of molecular keys.

Makaleyi görüntüle
The use of and search for drugs and dietary supplements derived from plants have accelerated in recent years. Ethnopharmacologists, botanists, microbiologists, and natural-products chemists are combing the Earth for phytochemicals and "leads" which could be developed for treatment of infectious diseases. While 25 to 50% of current pharmaceuticals are derived from plants, none are used as antimicrobials. Traditional healers have long used plants to prevent or cure infectious conditions; Western medicine is trying to duplicate their successes. Plants are rich in a wide variety of secondary metabolites, such as tannins, terpenoids, alkaloids, and flavonoids, which have been found in vitro to have antimicrobial properties. This review attempts to summarize the current status of botanical screening efforts, as well as in vivo studies of their effectiveness and toxicity. The structure and antimicrobial properties of phytochemicals are also addressed. Since many of these compounds are currently available as unregulated botanical preparations and their use by the public is increasing rapidly, clinicians need to consider the consequences of patients self-medicating with these preparations.

Makaleyi görüntüle
Silicon is the second most abundant element in soils, the mineral substrate for most of the world's plant life. The soil water, or the "soil solution," contains silicon, mainly as silicic acid, H4SiO4, at 0.1-0.6 mM--concentrations on the order of those of potassium, calcium, and other major plant nutrients, and well in excess of those of phosphate. Silicon is readily absorbed so that terrestrial plants contain it in appreciable concentrations, ranging from a fraction of 1% of the dry matter to several percent, and in some plants to 10% or even higher. In spite of this prominence of silicon as a mineral constituent of plants, it is not counted among the elements defined as "essential," or nutrients, for any terrestrial higher plants except members of the Equisitaceae. For that reason it is not included in the formulation of any of the commonly used nutrient solutions. The plant physiologist's solution-cultured plants are thus anomalous, containing only what silicon is derived as a contaminant of their environment. Ample evidence is presented that silicon, when readily available to plants, plays a large role in their growth, mineral nutrition, mechanical strength, and resistance to fungal diseases, herbivory, and adverse chemical conditions of the medium. Plants grown in conventional nutrient solutions are thus to an extent experimental artifacts. Omission of silicon from solution cultures may lead to distorted results in experiments on inorganic plant nutrition, growth and development, and responses to environmental stress.

Makaleyi görüntüle

Kaynaklar ve Görseller

« Prosopis glandulosa Prosopis kuntzei »