Petiveria Alliacea

Bitki adı: Petiveria Alliacea
Bilimsel adı: Petiveria alliacea
Cins: Petiveria
Familya: Petiveriaceae

Genel Bilgiler


Duke – Ethnobotany

Bilgi: Duke USEAGE: M | Woi.7
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Uphof
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Wong
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb30: 119
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 | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Duke,1972
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Woi.7
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Standley
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 | Duke,1972
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 | Liogier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Wong
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb30: 119
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb30: 119
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Wong
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Wong
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb30: 119
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb30: 119
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Wong
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Liogier
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 | Eb30: 119
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Wong
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Pittier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Woi.7
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Liogier
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 | Eb30: 119
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Wong
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Duke,1972
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Liogier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Woi.7
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Duke,1972
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Standley,Steyermark
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 | Woi.7
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Liogier
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 | Duke,1972
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Liogier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb30: 119
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Wong
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Uphof
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Martinez
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Liogier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Woi.7
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Duke,1972
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Woi.7
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Uphof
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Martinez
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 | Duke,1972
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Woi.7
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Lewis
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Lewis
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Altschul
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Altschul
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Duke,1972
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb24: 362
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 | Pittier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Brutus
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Woi.7
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Liogier
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 | Pittier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Woi.7
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Liogier
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 | Martinez
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 | Martinez
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Hartwell
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Standley
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb30: 119
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Wong
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Woi.7
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Liogier
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 | Pittier
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Wong
Kaynak: James A. Duke
Bilgi: Duke USEAGE: M | Eb30: 119
Kaynak: James A. Duke

Bilimsel Araştırmalar

Stigmasterol is an unsaturated phytosterol belonging to the class of tetracyclic triterpenes. It is one of the most common plant sterols, found in a variety of natural sources, including vegetable fats or oils from many plants. Currently, stigmasterol has been examined via in vitro and in vivo assays and molecular docking for its various biological activities on different metabolic disorders. The findings indicate potent pharmacological effects such as anticancer, anti-osteoarthritis, anti-inflammatory, anti-diabetic, immunomodulatory, antiparasitic, antifungal, antibacterial, antioxidant, and neuroprotective properties. Indeed, stigmasterol from plants and algae is a promising molecule in the development of drugs for cancer therapy by triggering intracellular signaling pathways in numerous cancers. It acts on the Akt/mTOR and JAK/STAT pathways in ovarian and gastric cancers. In addition, stigmasterol markedly disrupted angiogenesis in human cholangiocarcinoma by tumor necrosis factor-α (TNF-α) and vascular endothelial growth factor receptor-2 (VEGFR-2) signaling down-regulation. The association of stigmasterol and sorafenib promoted caspase-3 activity and down-regulated levels of the anti-apoptotic protein Bcl-2 in breast cancer. Antioxidant activities ensuring lipid peroxidation and DNA damage lowering conferred to stigmasterol chemoprotective activities in skin cancer. Reactive oxygen species (ROS) regulation also contributes to the neuroprotective effects of stigmasterol, as well as dopamine depletion and acetylcholinesterase inhibition. The anti-inflammatory properties of phytosterols involve the production of anti-inflammatory cytokines, the decrease in inflammatory mediator release, and the inhibition of inducible nitric oxide synthase (iNOS) and cyclooxygenase-2 (COX-2). Stigmasterol exerts anti-diabetic effects by reducing fasting glucose, serum insulin levels, and oral glucose tolerance. Other findings showed the antiparasitic activities of this molecule against certain strains of parasites such as Trypanosoma congolense (in vivo) and on promastigotes and amastigotes of the Leishmania major (in vitro). Some stigmasterol-rich plants were able to inhibit Candida albicans , virusei , and tropicalis at low doses. Accordingly, this review outlines key insights into the pharmacological abilities of stigmasterol and the specific mechanisms of action underlying some of these effects. Additionally, further investigation regarding pharmacodynamics, pharmacokinetics, and toxicology is recommended.

Makaleyi görüntüle
Synthesis of metal nanoparticles using plant extracts is one of the most simple, convenient, economical, and environmentally friendly methods that mitigate the involvement of toxic chemicals. Hence, in recent years, several eco-friendly processes for the rapid synthesis of silver nanoparticles have been reported using aqueous extracts of plant parts such as the leaf, bark, roots, etc. This review summarizes and elaborates the new findings in this research domain of the green synthesis of silver nanoparticles (AgNPs) using different plant extracts and their potential applications as antimicrobial agents covering the literature since 2015. While highlighting the recently used different plants for the synthesis of highly efficient antimicrobial green AgNPs, we aim to provide a systematic in-depth discussion on the possible influence of the phytochemicals and their concentrations in the plants extracts, extraction solvent, and extraction temperature, as well as reaction temperature, pH, reaction time, and concentration of precursor on the size, shape and stability of the produced AgNPs. Exhaustive details of the plausible mechanism of the interaction of AgNPs with the cell wall of microbes, leading to cell death, and high antimicrobial activities have also been elaborated. The shape and size-dependent antimicrobial activities of the biogenic AgNPs and the enhanced antimicrobial activities by synergetic interaction of AgNPs with known commercial antibiotic drugs have also been comprehensively detailed.

Makaleyi görüntüle
Infestations with the cattle tick, Rhipicephalus microplus, constitute the most important ectoparasite problem for cattle production in tropical and subtropical regions worldwide, resulting in major economic losses. The control of R. microplus is mostly based on the use of conventional acaricides and macrocyclic lactones. However, the intensive use of such compounds has resulted in tick populations that exhibit resistance to all major acaricide chemical classes. Consequently, there is a need for the development of alternative approaches, possibly including the use of animal husbandry practices, synergized pesticides, rotation of acaricides, pesticide mixture formulations, manual removal of ticks, selection for host resistance, nutritional management, release of sterile male hybrids, environmental management, plant species that are unfavourable to ticks, pasture management, plant extracts, essential oils and vaccination. Integrated tick management consists of the systematic combination of at least two control technologies aiming to reduce selection pressure in favour of acaricide-resistant individuals, while maintaining adequate levels of animal production. The purpose of this paper is to present a current review on conventional acaricide and macrocyclic lactone resistance for better understanding and control of resistant ticks with particular emphasis on R. microplus on cattle.

Makaleyi görüntüle
We describe a cell-based kinetic profiling approach using impedance readout for monitoring the effect of small molecule compounds. This noninvasive readout allows continuous sampling of cellular responses to biologically active compounds and the ensuing kinetic profile provides information regarding the temporal interaction of compounds with cells. The utility of this approach was tested by screening a library containing FDA approved drugs, experimental compounds, and nature compounds. Compounds with similar activity produced similar impedance-based time-dependent cell response profiles (TCRPs). The compounds were clustered based on TCRP similarity. We identified novel mechanisms for existing drugs, confirmed previously reported calcium modulating activity for COX-2 inhibitor celecoxib, and identified an additional mechanism for the experimental compound monastrol. We also identified and characterized a new antimitotic agent. Our findings indicate that the TCRP approach provides predictive mechanistic information for small molecule compounds.

Makaleyi görüntüle
Background This paper is based on ethnobotanical interviews conducted from 1996-2000 in Trinidad and Tobago with thirty male and female respondents. Methods A non-experimental validation was conducted on the plants used for urinary problems and diabetes mellitus: This is a preliminary step to establish that the plants used are safe or effective, to help direct clinical trials, and to inform Caribbean physicians of the plants' known properties to avoid counter-prescribing. Results The following plants are used to treat diabetes: Antigonon leptopus, Bidens alba, Bidens pilosa, Bixa orellana, Bontia daphnoides, Carica papaya, Catharanthus roseus, Cocos nucifera, Gomphrena globosa, Laportea aestuans, Momordica charantia, Morus alba, Phyllanthus urinaria and Spiranthes acaulis. Apium graviolens is used as a heart tonic and for low blood pressure. Bixa orellana, Bontia daphnoides, Cuscuta americana and Gomphrena globosa are used for jaundice. The following plants are used for hypertension: Aloe vera, Annona muricata, Artocarpus altilis, Bixa orellana, Bidens alba, Bidens pilosa, Bonta daphnoides, Carica papaya, Cecropia peltata, Citrus paradisi, Cola nitida, Crescentia cujete, Gomphrena globosa, Hibiscus sabdariffa, Kalanchoe pinnata, Morus alba, Nopalea cochinellifera, Ocimum campechianum, Passiflora quadrangularis, Persea americana and Tamarindus indicus. The plants used for kidney problems are Theobroma cacao, Chamaesyce hirta, Flemingia strobilifera, Peperomia rotundifolia, Petiveria alliacea, Nopalea cochinellifera, Apium graveolens, Cynodon dactylon, Eleusine indica, Gomphrena globosa, Pityrogramma calomelanos and Vetiveria zizanioides. Plants are also used for gall stones and for cooling. Conclusion Chamaesyce hirta, Cissus verticillata, Kalanchoe pinnata, Peperomia spp., Portulaca oleraceae, Scoparia dulcis, and Zea mays have sufficient evidence to support their traditional use for urinary problems, "cooling" and high cholesterol. Eggplant extract as a hypocholesterolemic agent has some support but needs more study. The plants used for hypertension, jaundice and diabetes that may be safe and justify more formal evaluation are Annona squamosa, Aloe vera, Apium graveolens, Bidens alba, Carica papaya, Catharanthus roseus, Cecropia peltata, Citrus paradisi, Hibsicus sabdariffa, Momordica charantia, Morus alba, Persea americana, Phyllanthus urinaria, Tamarindus indicus and Tournefortia hirsutissima. Several of the plants are used for more than one condition and further trials should take this into account.

Makaleyi görüntüle

Kaynaklar ve Görseller

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