Plumbago Zeylanica

Bitki adı: Plumbago Zeylanica
Bilimsel adı: Plumbago zeylanica
Cins: Plumbago
Familya: Plumbaginaceae

Genel Bilgiler


Duke – Ethnobotany

Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Uphof
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Burkill,1966
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Burkill,1966
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Eb30: 318
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Burkill,1966
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Takeda
Kaynak: James A. Duke
Bilgi: Steinmetz
Kaynak: James A. Duke
Bilgi: Burkill,1966
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Burkill,1966
Kaynak: James A. Duke
Bilgi: Eb30: 318
Kaynak: James A. Duke
Bilgi: Uphof
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Burkill,1966
Kaynak: James A. Duke
Bilgi: Uphof
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Burkill,1966
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Burkill,1966
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Burkill,1966
Kaynak: James A. Duke
Bilgi: Uphof
Kaynak: James A. Duke
Bilgi: Woi.8
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Eb32: 282
Kaynak: James A. Duke
Bilgi: Eb25: 252
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Eb24: 261
Kaynak: James A. Duke
Bilgi: Eb25: 252
Kaynak: James A. Duke
Bilgi: Broun
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Broun
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke
Bilgi: Ayensu
Kaynak: James A. Duke
Bilgi: Hartwell
Kaynak: James A. Duke

Bilimsel Araştırmalar

Diabetes mellitus is one of the major health problems in the world, the incidence and associated mortality are increasing. Inadequate regulation of the blood sugar imposes serious consequences for health. Conventional antidiabetic drugs are effective, however, also with unavoidable side effects. On the other hand, medicinal plants may act as an alternative source of antidiabetic agents. Examples of medicinal plants with antidiabetic potential are described, with focuses on preclinical and clinical studies. The beneficial potential of each plant matrix is given by the combined and concerted action of their profile of biologically active compounds.

Makaleyi görüntüle
Phytochemicals of medicinal plants encompass a diverse chemical space for drug discovery. India is rich with a flora of indigenous medicinal plants that have been used for centuries in traditional Indian medicine to treat human maladies. A comprehensive online database on the phytochemistry of Indian medicinal plants will enable computational approaches towards natural product based drug discovery. In this direction, we present, IMPPAT, a manually curated database of 1742 Indian Medicinal Plants, 9596 Phytochemicals, And 1124 Therapeutic uses spanning 27074 plant-phytochemical associations and 11514 plant-therapeutic associations. Notably, the curation effort led to a non-redundant in silico library of 9596 phytochemicals with standard chemical identifiers and structure information. Using cheminformatic approaches, we have computed the physicochemical, ADMET (absorption, distribution, metabolism, excretion, toxicity) and drug-likeliness properties of the IMPPAT phytochemicals. We show that the stereochemical complexity and shape complexity of IMPPAT phytochemicals differ from libraries of commercial compounds or diversity-oriented synthesis compounds while being similar to other libraries of natural products. Within IMPPAT, we have filtered a subset of 960 potential druggable phytochemicals, of which majority have no significant similarity to existing FDA approved drugs, and thus, rendering them as good candidates for prospective drugs. IMPPAT database is openly accessible at: https://cb.imsc.res.in/imppat .

Makaleyi görüntüle
Despite an array of cogent antibiotics, bacterial infections, notably those produced by nosocomial pathogens, still remain a leading factor of morbidity and mortality around the globe. They target the severely ill, hospitalized and immunocompromised patients with incapacitated immune system, who are prone to infections. The choice of antimicrobial therapy is largely empirical and not devoid of toxicity, hypersensitivity, teratogenicity and/or mutagenicity. The emergence of multidrug-resistant bacteria further intensifies the clinical predicament as it directly impacts public health due to diminished potency of current antibiotics. In addition, there is an escalating concern with respect to biofilm-associated infections that are refractory to the presently available antimicrobial armory, leaving almost no therapeutic option. Hence, there is a dire need to develop alternate antibacterial agents. The past decade has witnessed a substantial upsurge in the global use of nanomedicines as innovative tools for combating the high rates of antimicrobial resistance. Antibacterial activity of metal and metal oxide nanoparticles (NPs) has been extensively reported. The microbes are eliminated either by microbicidal effects of the NPs, such as release of free metal ions culminating in cell membrane damage, DNA interactions or free radical generation, or by microbiostatic effects coupled with killing potentiated by the host's immune system. This review encompasses the magnitude of multidrug resistance in nosocomial infections, bacterial evasion of the host immune system, mechanisms used by bacteria to develop drug resistance and the use of nanomaterials based on metals to overcome these challenges. The diverse annihilative effects of conventional and biogenic metal NPs for antibacterial activity are also discussed. The use of polymer-based nanomaterials and nanocomposites, alone or functionalized with ligands, antibodies or antibiotics, as alternative antimicrobial agents for treating severe bacterial infections is also discussed. Combinatorial therapy with metallic NPs, as adjunct to the existing antibiotics, may aid to restrain the mounting menace of bacterial resistance and nosocomial threat.

Makaleyi görüntüle
There are concerns about using synthetic phenolic antioxidants such as butylated hydroxytoluene (BHT) and butylated hydroxyanisole (BHA) as food additives because of the reported negative effects on human health. Thus, a replacement of these synthetics by antioxidant extractions from various foods has been proposed. More than 8000 different phenolic compounds have been characterized; fruits and vegetables are the prime sources of natural antioxidants. In order to extract, measure, and identify bioactive compounds from a wide variety of fruits and vegetables, researchers use multiple techniques and methods. This review includes a brief description of a wide range of different assays. The antioxidant, antimicrobial, and anticancer properties of phenolic natural products from fruits and vegetables are also discussed.

Makaleyi görüntüle
Plumbagin, derived from the medicinal plant Plumbago zeylanica, modulates cellular proliferation, carcinogenesis, and radioresistance, all known to be regulated by the activation of the transcription factor NF-kappaB, suggesting plumbagin might affect the NF-kappaB activation pathway. We found that plumbagin inhibited NF-kappaB activation induced by TNF, and other carcinogens and inflammatory stimuli (e.g. phorbol 12-myristate 13-acetate, H2O2, cigarette smoke condensate, interleukin-1beta, lipopolysaccharide, and okadaic acid). Plumbagin also suppressed the constitutive NF-kappaB activation in certain tumor cells. The suppression of NF-kappaB activation correlated with sequential inhibition of the tumor necrosis factor (TNF)-induced activation of IkappaBalpha kinase, IkappaBalpha phosphorylation, IkappaBalpha degradation, p65 phosphorylation, p65 nuclear translocation, and the NF-kappaB-dependent reporter gene expression activated by TNF, TNFR1, TRAF2, NIK, IKK-beta, and the p65 subunit of NF-kappaB. Plumbagin also suppressed the direct binding of nuclear p65 and recombinant p65 to the DNA, and this binding was reversed by dithiothreitol both in vitro and in vivo. However, plumbagin did not inhibit p65 binding to DNA when cells were transfected with the p65 plasmid containing cysteine 38 mutated to serine. Plumbagin down-regulated the expression of NF-kappaB-regulated anti-apoptotic (IAP1, IAP2, Bcl-2, Bcl-xL, cFLIP, Bfl-1/A1, and survivin), proliferative (cyclin D1 and COX-2), and angiogenic (matrix metalloproteinase-9 and vascular endothelial growth factor) gene products. This led to potentiation of apoptosis induced by TNF and paclitaxel and inhibited cell invasion. Overall, our results indicate that plumbagin is a potent inhibitor of the NF-kappaB activation pathway that leads to suppression of NF-kappaB-regulated gene products. This may explain its cell growth modulatory, anticarcinogenic, and radiosensitizing effects previously described.

Makaleyi görüntüle

Kaynaklar ve Görseller

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