Panama Ağacı

Bitki adı: Quillaja tree, bark
Bilimsel adı: Quillaja saponaria
Cins: Quillaja
Familya: Quillajaceae
Diğer adları: Quillaja tree

Quillaja saponaria

Genel Bilgiler


(Cortex Quillajae) Quillaja saponaria Molina (Rosaceae) ve diğer Quillaja türlerinin dış kısmı soyulduk- tan sonra kurutulmuş olan gövde ve dal ka­ buğudur. Değişik uzunlukta (bazen 1 metre 1 - Meriçli, AH. ve ark. : Flavonoids and anthocyanins of HelichrySum sangui­ neunı-Fitoterapia 55 (2) : 112 (1984). 2 - Yazıcıoğlu, T.: Türkiye nebati yağ zenginliği, Türkiyenin yağ tohum ve mey­ velerile nebati ya�ları üzer inde tecrübi araştırmalar-Ankara Y. Zir. Enst. Derg. 2 : 680 (1945).
Kaynak: Türkiye'de Bitkilerle Tedavi (Turhan Baytop), s. 194

Duke – Ethnobotany

Bilgi: Duke USEAGE: G | Steinmetz
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Uphof
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Steinmetz
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Woi.8
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Steinmetz
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Woi.8
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Uphof
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Steinmetz
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Steinmetz
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Eb20: 22
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Woi.8
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Uphof
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Woi.8
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Woi.8
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Uphof
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Steinmetz
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Steinmetz
Kaynak: James A. Duke
Bilgi: Duke USEAGE: G | Woi.8
Kaynak: James A. Duke

Bilimsel Araştırmalar

Adjuvants are indispensable components of vaccines. Despite being widely used in vaccines, their action mechanisms are not yet clear. With a greater understanding of the mechanisms by which the innate immune response controls the antigen-specific response, the adjuvants' action mechanisms are beginning to be elucidated. Adjuvants can be categorized as immunostimulants and delivery systems. Immunostimulants are danger signal molecules that lead to the maturation and activation of antigen-presenting cells (APCs) by targeting Toll-like receptors (TLRs) and other pattern recognition receptors (PRRs) to promote the production of antigen signals and co-stimulatory signals, which in turn enhance the adaptive immune responses. On the other hand, delivery systems are carrier materials that facilitate antigen presentation by prolonging the bioavailability of the loaded antigens, as well as targeting antigens to lymph nodes or APCs. The adjuvants' action mechanisms are systematically summarized at the beginning of this review. This is followed by an introduction of the mechanisms, properties, and progress of classical vaccine adjuvants. Furthermore, since some of the adjuvants under investigation exhibit greater immune activation potency than classical adjuvants, which could compensate for the deficiencies of classical adjuvants, a summary of the adjuvant platforms under investigation is subsequently presented. Notably, we highlight the different action mechanisms and immunological properties of these adjuvant platforms, which will provide a wide range of options for the rational design of different vaccines. On this basis, this review points out the development prospects of vaccine adjuvants and the problems that should be paid attention to in the future.

Makaleyi görüntüle
Adjuvants are vaccine components that enhance the magnitude, breadth and durability of the immune response. Following its introduction in the 1920s, alum remained the only adjuvant licensed for human use for the next 70 years. Since the 1990s, a further five adjuvants have been included in licensed vaccines, but the molecular mechanisms by which these adjuvants work remain only partially understood. However, a revolution in our understanding of the activation of the innate immune system through pattern recognition receptors (PRRs) is improving the mechanistic understanding of adjuvants, and recent conceptual advances highlight the notion that tissue damage, different forms of cell death, and metabolic and nutrient sensors can all modulate the innate immune system to activate adaptive immunity. Furthermore, recent advances in the use of systems biology to probe the molecular networks driving immune response to vaccines ('systems vaccinology') are revealing mechanistic insights and providing a new paradigm for the vaccine discovery and development process. Here, we review the 'known knowns' and 'known unknowns' of adjuvants, discuss these emerging concepts and highlight how our expanding knowledge about innate immunity and systems vaccinology are revitalizing the science and development of novel adjuvants for use in vaccines against COVID-19 and future pandemics.

Makaleyi görüntüle
Neuroblastoma is a solid tumour that arises from the developing sympathetic nervous system. Over the past decade, our understanding of this disease has advanced tremendously. The future challenge is to apply the knowledge gained to developing risk-based therapies and, ultimately, improving outcome. In this Review we discuss the key discoveries in the developmental biology, molecular genetics and immunology of neuroblastoma, as well as new translational tools for bringing these promising scientific advances into the clinic.

Makaleyi görüntüle
Adjuvants enhance immunity to vaccines and experimental antigens by a variety of mechanisms. In the past decade, many receptors and signaling pathways in the innate immune system have been defined and these innate responses strongly influence the adaptive immune response. The focus of this review is to delineate the innate mechanisms by which adjuvants mediate their effects. We highlight how adjuvants can be used to influence the magnitude and alter the quality of the adaptive response in order to provide maximum protection against specific pathogens. Despite the impressive success of currently approved adjuvants for generating immunity to viral and bacterial infections, there remains a need for improved adjuvants that enhance protective antibody responses, especially in populations that respond poorly to current vaccines. However, the larger challenge is to develop vaccines that generate strong T cell immunity with purified or recombinant vaccine antigens.

Makaleyi görüntüle
The lentivirus human immunodeficiency virus (HIV) causes AIDS by interacting with a large number of different cells in the body and escaping the host immune response against it. HIV is transmitted primarily through blood and genital fluids and to newborn infants from infected mothers. The steps occurring in infection involve an interaction of HIV not only with the CD4 molecule on cells but also with other cellular receptors recently identified. Virus-cell fusion and HIV entry subsequently take place. Following virus infection, a variety of intracellular mechanisms determine the relative expression of viral regulatory and accessory genes leading to productive or latent infection. With CD4+ lymphocytes, HIV replication can cause syncytium formation and cell death; with other cells, such as macrophages, persistent infection can occur, creating reservoirs for the virus in many cells and tissues. HIV strains are highly heterogeneous, and certain biologic and serologic properties determined by specific genetic sequences can be linked to pathogenic pathways and resistance to the immune response. The host reaction against HIV, through neutralizing antibodies and particularly through strong cellular immune responses, can keep the virus suppressed for many years. Long-term survival appears to involve infection with a relatively low-virulence strain that remains sensitive to the immune response, particularly to control by CD8+ cell antiviral activity. Several therapeutic approaches have been attempted, and others are under investigation. Vaccine development has provided some encouraging results, but the observations indicate the major challenge of preventing infection by HIV. Ongoing research is necessary to find a solution to this devastating worldwide epidemic.

Makaleyi görüntüle

Kaynaklar ve Görseller

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