105 research outputs found

    The response of Marchantia polymorpha L. gemmae in aseptic culture to temperature light and substrate

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    Properties of High Strength Steels

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    Shot Peening and Valve Fatigue

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    Normal families of functions and groups of pseudoconformal diffeomorphisms of quaternion and octonion variables

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    This paper is devoted to the specific class of pseudoconformal mappings of quaternion and octonion variables. Normal families of functions are defined and investigated. Four criteria of a family being normal are proven. Then groups of pseudoconformal diffeomorphisms of quaternion and octonion manifolds are investigated. It is proven, that they are finite dimensional Lie groups for compact manifolds. Their examples are given. Many charactersitic features are found in comparison with commutative geometry over R\bf R or C\bf C.Comment: 55 pages, 53 reference

    Pneumocystis murina colonization in immunocompetent surfactant protein A deficient mice following environmental exposure

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    <p>Abstract</p> <p>Background</p> <p><it>Pneumocystis spp</it>. are opportunistic pathogens that cause pneumonia in immunocompromised humans and animals. <it>Pneumocystis </it>colonization has also been detected in immunocompetent hosts and may exacerbate other pulmonary diseases. Surfactant protein A (SP-A) is an innate host defense molecule and plays a role in the host response to <it>Pneumocystis</it>.</p> <p>Methods</p> <p>To analyze the role of SP-A in protecting the immunocompetent host from <it>Pneumocystis </it>colonization, the susceptibility of immunocompetent mice deficient in SP-A (KO) and wild-type (WT) mice to <it>P. murina </it>colonization was analyzed by reverse-transcriptase quantitative PCR (qPCR) and serum antibodies were measured by enzyme-linked immunosorbent assay (ELISA).</p> <p>Results</p> <p>Detection of <it>P. murina </it>specific serum antibodies in immunocompetent WT and KO mice indicated that the both strains of mice had been exposed to <it>P. murina </it>within the animal facility. However, P. <it>murina </it>mRNA was only detected by qPCR in the lungs of the KO mice. The incidence and level of the mRNA expression peaked at 8–10 weeks and declined to undetectable levels by 16–18 weeks. When the mice were immunosuppressed, <it>P. murina </it>cyst forms were also only detected in KO mice. <it>P. murina </it>mRNA was detected in <it>SCID </it>mice that had been exposed to KO mice, demonstrating that the immunocompetent KO mice are capable of transmitting the infection to immunodeficient mice. The pulmonary cellular response appeared to be responsible for the clearance of the colonization. More CD4+ and CD8+ T-cells were recovered from the lungs of immunocompetent KO mice than from WT mice, and the colonization in KO mice depleted CD4+ cells was not cleared.</p> <p>Conclusion</p> <p>These data support an important role for SP-A in protecting the immunocompetent host from <it>P. murina </it>colonization, and provide a model to study <it>Pneumocystis </it>colonization acquired via environmental exposure in humans. The results also illustrate the difficulties in keeping mice from exposure to <it>P. murina </it>even when housed under barrier conditions.</p

    The Effect of Cyperus esculentus

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    Weeds in Cotton: Their Biology, Ecology, and Control

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    This publication brings together over 25 years of accumulated knowledge about the biology and ecology of weeds in cotton that growers can put to practical use in weed management. The weeds studied include three perennials (bermudagrass, johnsongrass, and yellow nutsedge) and four annuals (ivyleaf, morninglory, barnyardgrass, black nightshade, and Palmer amaranth). Although applicable to some extent to all cotton growing states, this knowledge was developed under the irrigated growing conditions of the West (California, Arizona, and New Mexico) and may be most useful in weed management there. The publication addresses four major areas of weed biology and control: (1) plant characteristics that contribute to weed success, (2) weed reintroduction, (3) the influence of weed competition and weed-free periods on yields of cotton and on weed reproduction, and (4) the use of herbicides. The authors present information emphasizing how extensively weeds can damage cotton and suggesting how much weed control cotton can provide for itself
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