974 research outputs found
The course of experimental staphylococcus infection in albino mice during action of certain factors of space flight
A study was made of the effect of certain factors of space flight, acceleration and hypokinesia, on the course of experimental staphylococcus infection in mice. Combined action of hypokinesia and acceleration caused a marked depression of the phagocytic activity of leukocytes and formation of a considerable amount of alpha toxin
The role of alkane coordination in CβH bond cleavage at a Pt(II) center
The rates of CFormula H bond activation for various alkanes by [(NβN)Pt(Me)(TFEd3)]+ (N Formula N = ArFormula NFormula C(Me)Formula C(Me)Formula NFormula Ar; Ar = 3,5-di-tert-butylphenyl; TFE-d3 = CF3CD2OD) were studied. Both linear and cyclic alkanes give the corresponding alkene-hydride cation [(NβN)Pt(H)(alkene)]+ via (i) rate determining alkane coordination to form a CFormula H {sigma} complex, (ii) oxidative cleavage of the coordinated CFormula H bond to give a platinum(IV) alkyl-methyl-hydride intermediate, (iii) reductive coupling to generate a methane {sigma} complex, (iv) dissociation of methane, and (v) beta-H elimination to form the observed product. Second-order rate constants for cycloalkane activation (CnH2n), are proportional to the size of the ring (k ~ n). For cyclohexane, the deuterium kinetic isotope effect (kH/kD) of 1.28 (5) is consistent with the proposed rate determining alkane coordination to form a CFormula H {sigma} complex. Statistical scrambling of the five hydrogens of the Pt-methyl and the coordinated methylene unit, via rapid, reversible steps ii and iii, and interchange of geminal CFormula H bonds of the methane and cyclohexane CFormula H {sigma} adducts, is observed before loss of methane
A Chebyshev minimax technique oriented to aerospace trajectory optimization problems.
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/76822/1/AIAA-6604-910.pd
ΠΠΎΡΡΠΎΠ»ΠΎΠ³ΠΈΡ ΠΈ ΡΠΊΠΎΠ»ΠΎΠ³ΠΈΡΠ΅ΡΠΊΠΈΠ΅ ΠΎΡΠΎΠ±Π΅Π½Π½ΠΎΡΡΠΈ Sparganium Γ longifolium (Typhaceae) Π² ΡΠ΅Π½ΡΡΠ΅ ΠΠ²ΡΠΎΠΏΠ΅ΠΉΡΠΊΠΎΠΉ ΡΠ°ΡΡΠΈ Π ΠΎΡΡΠΈΠΈ
The increasing impact of anthropogenic factors and climate change affect the growth of a number of taxa of hybrid nature. These taxa are widespread among various taxonomic groups of aquatic and semi-aquatic plants. The genus Sparganium L. Π is not an exception. In that regard, the aim of this study is to conduct biomorphological investigation of Sparganium Γ longifolium Turcz. ex Ledeb., evaluate qualitative and quantitative criteria for the hybrid similarities and differences with its parental species, as well as to analyze data on its habitat characteristics. Samples were collected in 2014β2016 from waterbodies in European Russia (Tver and Yaroslavl oblasts). In the study on biomorphology of S. Γ longifolium we used live and fixed materials, as well as herbarium funds of IBIW, MXA and MW. To establish and specify taxonomic features of the hybrid under study, indicating to its similarity with a certain ancestral species, our data on the morphology and ecology of S. emersum Rehm. and S. gramineum Georgi. are used. During field studies, the type of water object where the hybrid was detected, ecological characteristics of its habitat (type of soil, depth, water temperature and pH) are determined; the list of taxa which enter into the cenosis composition is compiled. The biomorphological investigation of S. Γ longifolium shows that by life form this hybrid, as well as its parental species, is a vegetative-mobile evidently-polycentric annual or biennial plant of vegetative origin with a racemose root system. The following should be attributed to the characteristic features justifying the hybrid origin of S. Γ longifolium: 1) a wider, slightly carinated lamina (as in S. emersum); 2) a branched inflorescence (as in S. gramineum); 3) the lower covering leaf of inflorescence, often exceeding the total length of the latter; 4) fruits with a straight (as in S. emersum) as well as bent (as in S. gramineum) style. Interestingly, some populations of S. Γ longifolium are rich in terate forms that can be explained by back crossing with one of the parental species or pleiotropic mutation(s). It is established that S. Γ longifolium is not widespread in European Russia, is a typically freshwater species, occurring in the littoral zone of mesotrophic and dystrophic waterbodies (usually in lakes of glacier origin). At present, its appearance in lake ecosystems is due to accelerated eutrophication caused by increasing human activities. Perhaps earlier this hybrid formation occurred in peripheral zones of the range of S. gramineum under cyclic climate changes. Observations suggest that S. Γ longifolium exceeds S. gramineum in ecological potential. At the same time, habitat features of the latter have an effect on the hybridβs distribution potential (limitation of habitat spectrum), which is hardly exceeds S. emersum in its ecological and coenotic characteristics. 154
ΠΠ° ΠΎΡΠ½ΠΎΠ²Π΅ ΡΠΎΠ²ΡΠ΅ΠΌΠ΅Π½Π½ΡΡ
ΠΏΠΎΠ΄Ρ
ΠΎΠ΄ΠΎΠ² ΠΊ Π°Π½Π°Π»ΠΈΠ·Ρ ΠΆΠΈΠ·Π½Π΅Π½Π½ΡΡ
ΡΠΎΡΠΌ ΡΠ°ΡΡΠΌΠΎΡΡΠ΅Π½Π° ΠΌΠΎΡΡΠΎΠ»ΠΎΠ³ΠΈΡ Π²Π΅Π³Π΅ΡΠ°ΡΠΈΠ²Π½ΠΎΠΉ ΠΈ Π³Π΅Π½Π΅ΡΠ°ΡΠΈΠ²Π½ΠΎΠΉ ΡΡΠ΅ΡΡ Sparangium Γ longifolium Turcz. ex Ledeb. (S. emersum Rehm. Γ S. gramineum Georgi). ΠΠΎ ΠΆΠΈΠ·Π½Π΅Π½Π½ΠΎΠΉ ΡΠΎΡΠΌΠ΅ S. Γ longifolium, ΠΊΠ°ΠΊ ΠΈ Π΅Π³ΠΎ ΡΠΎΠ΄ΠΈΡΠ΅Π»ΡΡΠΊΠΈΠ΅ Π²ΠΈΠ΄Ρ, ΠΏΡΠ΅Π΄ΡΡΠ°Π²Π»ΡΠ΅Ρ ΡΠΎΠ±ΠΎΠΉ Π²Π΅Π³Π΅ΡΠ°ΡΠΈΠ²Π½ΠΎ-ΠΏΠΎΠ΄Π²ΠΈΠΆΠ½ΡΠΉ ΡΠ²Π½ΠΎΠΏΠΎΠ»ΠΈΡΠ΅Π½ΡΡΠΈΡΠ΅ΡΠΊΠΈΠΉ ΠΌΠ°Π»ΠΎΠ»Π΅ΡΠ½ΠΈΠΊ Π²Π΅Π³Π΅ΡΠ°ΡΠΈΠ²Π½ΠΎΠ³ΠΎ ΠΏΡΠΎΠΈΡΡ
ΠΎΠΆΠ΄Π΅Π½ΠΈΡ Ρ ΠΊΠΈΡΡΠ΅Π²ΠΈΠ΄Π½ΠΎΠΉ ΠΊΠΎΡΠ½Π΅Π²ΠΎΠΉ ΡΠΈΡΡΠ΅ΠΌΠΎΠΉ. Π ΡΠ°Π±ΠΎΡΠ΅ ΡΡΡΠ°Π½ΠΎΠ²Π»Π΅Π½ ΠΏΡΠΎΠΌΠ΅ΠΆΡΡΠΎΡΠ½ΡΠΉ Ρ
Π°ΡΠ°ΠΊΡΠ΅Ρ ΠΊΠΎΠ½ΠΊΡΠ΅ΡΠ½ΡΡ
ΠΏΡΠΈΠ·Π½Π°ΠΊΠΎΠ² Π³ΠΈΠ±ΡΠΈΠ΄Π°, Π»ΠΈΠ±ΠΎ ΡΠΌΠ΅ΡΠ΅Π½ΠΈΠ΅ ΡΠΎΠ³ΠΎ ΠΈΠ»ΠΈ ΠΈΠ½ΠΎΠ³ΠΎ ΠΏΡΠΈΠ·Π½Π°ΠΊΠ° Π² ΡΡΠΎΡΠΎΠ½Ρ ΠΎΠ΄Π½ΠΎΠ³ΠΎ ΠΈΠ· ΡΠΎΠ΄ΠΈΡΠ΅Π»ΡΡΠΊΠΈΡ
Π²ΠΈΠ΄ΠΎΠ². Π Ρ
Π°ΡΠ°ΠΊΡΠ΅ΡΠ½ΡΠΌ ΠΎΡΠΎΠ±Π΅Π½Π½ΠΎΡΡΡΠΌ, ΠΏΠΎΠ΄ΡΠ²Π΅ΡΠΆΠ΄Π°ΡΡΠΈΠΌ Π³ΠΈΠ±ΡΠΈΠ΄Π½ΠΎΠ΅ ΠΏΡΠΎΠΈΡΡ
ΠΎΠΆΠ΄Π΅Π½ΠΈΠ΅ S. Γ longifolium, ΡΠ»Π΅Π΄ΡΠ΅Ρ ΠΎΡΠ½Π΅ΡΡΠΈ: 1) Π½Π°Π»ΠΈΡΠΈΠ΅ Π±ΠΎΠ»Π΅Π΅ ΡΠΈΡΠΎΠΊΠΎΠΉ, ΡΠ»Π΅Π³ΠΊΠ° ΠΊΠΈΠ»Π΅Π²Π°ΡΠΎΠΉ Π»ΠΈΡΡΠΎΠ²ΠΎΠΉ ΠΏΠ»Π°ΡΡΠΈΠ½ΠΊΠΈ (ΠΊΠ°ΠΊ Ρ S. emersum); 2) Π½Π°Π»ΠΈΡΠΈΠ΅ ΡΠ°Π·Π²Π΅ΡΠ²Π»Π΅Π½Π½ΠΎΠ³ΠΎ ΡΠΎΡΠ²Π΅ΡΠΈΡ (ΠΊΠ°ΠΊ Ρ S. gramineum); 3) Π½ΠΈΠΆΠ½ΠΈΠΉ ΠΊΡΠΎΡΡΠΈΠΉ Π»ΠΈΡΡ ΡΠΎΡΠ²Π΅ΡΠΈΡ, ΡΠ°ΡΡΠΎ ΠΏΡΠ΅Π²ΡΡΠ°ΡΡΠΈΠΉ ΠΎΠ±ΡΡΡ Π΄Π»ΠΈΠ½Ρ ΠΏΠΎΡΠ»Π΅Π΄Π½Π΅Π³ΠΎ; 4) Π½Π°Π»ΠΈΡΠΈΠ΅ ΠΏΠ»ΠΎΠ΄ΠΎΠ² ΠΊΠ°ΠΊ Ρ ΠΏΡΡΠΌΡΠΌ (ΠΊΠ°ΠΊ Ρ S. emersum), ΡΠ°ΠΊ ΠΈ Ρ Π·Π°Π³Π½ΡΡΡΠΌ (ΠΊΠ°ΠΊ Ρ S. gramineum) ΡΡΠΎΠ»Π±ΠΈΠΊΠΎΠΌ. ΠΡΠ΄Π΅Π»ΡΠ½ΡΠ΅ ΠΏΠΎΠΏΡΠ»ΡΡΠΈΠΈ S. Γ longifolium ΠΈΠ·ΠΎΠ±ΠΈΠ»ΡΡΡ ΡΠ΅ΡΠ°ΡΠ½ΡΠΌΠΈ ΡΠΎΡΠΌΠ°ΠΌΠΈ, ΠΊΠΎΡΠΎΡΡΠ΅ ΠΌΠΎΠ³ΡΡ Π±ΡΡΡ ΠΎΠ±ΡΡΡΠ½Π΅Π½Ρ Π½Π°Π»ΠΈΡΠΈΠ΅ΠΌ Π²ΠΎΠ·Π²ΡΠ°ΡΠ½ΠΎΠ³ΠΎ ΡΠΊΡΠ΅ΡΠΈΠ²Π°Π½ΠΈΡ, Π»ΠΈΠ±ΠΎ ΠΌΡΡΠ°ΡΠΈΠΈ(ΠΉ) Ρ ΠΏΠ»Π΅ΠΉΠΎΡΡΠΎΠΏΠ½ΡΠΌ ΠΏΡΠΎΡΠ²Π»Π΅Π½ΠΈΠ΅ΠΌ. ΠΠ½Π°Π»ΠΈΠ· ΠΏΡΠ»ΡΡΡ Π³ΠΈΠ±ΡΠΈΠ΄Π° Π½Π° ΠΆΠΈΠ·Π½Π΅ΡΠΏΠΎΡΠΎΠ±Π½ΠΎΡΡΡ ΠΏΠΎΠΊΠ°Π·Π°Π» ΠΏΡΠ΅ΠΎΠ±Π»Π°Π΄Π°Π½ΠΈΠ΅ ΡΡΠ΅ΡΠΈΠ»ΡΠ½ΠΎΠΉ ΠΏΡΠ»ΡΡΡ Π½Π°Π΄ ΡΠ΅ΡΡΠΈΠ»ΡΠ½ΠΎΠΉ. Π£ΡΡΠ°Π½ΠΎΠ²Π»Π΅Π½ΠΎ, ΡΡΠΎ S. Γ longifolium β ΠΌΠ°Π»ΠΎΡΠ°ΡΠΏΡΠΎΡΡΡΠ°Π½Π΅Π½Π½ΡΠΉ Π½Π° ΡΠ΅ΡΡΠΈΡΠΎΡΠΈΠΈ ΠΠ²ΡΠΎΠΏΠ΅ΠΉΡΠΊΠΎΠΉ ΡΠ°ΡΡΠΈ Π ΠΎΡΡΠΈΠΈ β ΡΠΈΠΏΠΈΡΠ½ΠΎ ΠΏΡΠ΅ΡΠ½ΠΎΠ²ΠΎΠ΄Π½ΡΠΉ Π²ΠΈΠ΄, Π²ΡΡΡΠ΅ΡΠ°ΡΡΠΈΠΉΡΡ Π² ΠΏΡΠΈΠ±ΡΠ΅ΠΆΠ½ΠΎΠΉ Π·ΠΎΠ½Π΅ ΠΌΠ΅Π·ΠΎΡΡΠΎΡΠ½ΡΡ
ΠΈ Π΄ΠΈΡΡΡΠΎΡΠ½ΡΡ
Π²ΠΎΠ΄Π½ΡΡ
ΠΎΠ±ΡΠ΅ΠΊΡΠΎΠ² (ΠΎΠ±ΡΡΠ½ΠΎ Π² ΠΎΠ·Π΅ΡΠ°Ρ
Π»Π΅Π΄Π½ΠΈΠΊΠΎΠ²ΠΎΠ³ΠΎ ΠΏΡΠΎΠΈΡΡ
ΠΎΠΆΠ΄Π΅Π½ΠΈΡ). ΠΠΎΡΠ²Π»Π΅Π½ΠΈΠ΅ ΠΏΠΎΠΏΡΠ»ΡΡΠΈΠΉ Π³ΠΈΠ±ΡΠΈΠ΄Π° Π² ΠΎΠ·Π΅ΡΠ°Ρ
ΠΎΠ±ΡΡΠ»ΠΎΠ²Π»Π΅Π½ΠΎ ΠΈΡ
ΡΡΡΠ΅ΠΌΠΈΡΠ΅Π»ΡΠ½ΠΎΠΉ ΡΠ²ΡΡΠΎΡΠΈΠΊΠ°ΡΠΈΠ΅ΠΉ Π² ΡΠ΅Π·ΡΠ»ΡΡΠ°ΡΠ΅ Π°Π½ΡΡΠΎΠΏΠΎΠ³Π΅Π½Π½ΠΎΠΉ Π΄Π΅ΡΡΠ΅Π»ΡΠ½ΠΎΡΡΠΈ. Π Π°Π½Π΅Π΅ ΠΎΠ±ΡΠ°Π·ΠΎΠ²Π°Π½ΠΈΠ΅ ΡΡΠΎΠ³ΠΎ Π³ΠΈΠ±ΡΠΈΠ΄Π°, Π²Π΅ΡΠΎΡΡΠ½ΠΎ, ΠΏΡΠΎΠΈΡΡ
ΠΎΠ΄ΠΈΠ»ΠΎ Π² ΠΏΠ΅ΡΠΈΡΠ΅ΡΠΈΠΉΠ½ΡΡ
ΡΠ°ΡΡΡΡ
Π°ΡΠ΅Π°Π»Π° S. gramineum ΠΏΡΠΈ ΡΠΈΠΊΠ»ΠΈΡΠ΅ΡΠΊΠΈΡ
ΠΈΠ·ΠΌΠ΅Π½Π΅Π½ΠΈΡΡ
ΠΊΠ»ΠΈΠΌΠ°ΡΠ°. ΠΠΌΠ΅ΡΡΠ΅ Ρ ΡΠ΅ΠΌ, ΠΎΡΠΎΠ±Π΅Π½Π½ΠΎΡΡΠΈ ΠΌΠ΅ΡΡΠΎΠΎΠ±ΠΈΡΠ°Π½ΠΈΡ ΠΏΠΎΡΠ»Π΅Π΄Π½Π΅Π³ΠΎ Π½Π°ΠΊΠ»Π°Π΄ΡΠ²Π°ΡΡ Β«ΠΎΡΠΏΠ΅ΡΠ°ΡΠΎΠΊΒ» Π½Π° ΠΏΠΎΡΠ΅Π½ΡΠΈΠ°Π» ΡΠ°ΡΠΏΡΠΎΡΡΡΠ°Π½Π΅Π½ΠΈΡ Π³ΠΈΠ±ΡΠΈΠ΄Π° (ΠΎΠ³ΡΠ°Π½ΠΈΡΠ΅Π½Π½ΠΎΡΡΡ ΡΠΏΠ΅ΠΊΡΡΠ° ΠΌΠ΅ΡΡΠΎΠΎΠ±ΠΈΡΠ°Π½ΠΈΠΉ), ΠΊΠΎΡΠΎΡΡΠΉ Π²ΡΡΠ΄ Π»ΠΈ ΠΌΠΎΠΆΠ΅Ρ ΠΏΡΠ΅Π²Π·ΠΎΠΉΡΠΈ ΠΏΠΎ ΡΠ²ΠΎΠΈΠΌ ΡΠΊΠΎΠ»ΠΎΠ³ΠΎ-ΡΠ΅Π½ΠΎΡΠΈΡΠ΅ΡΠΊΠΈΠΌ Ρ
Π°ΡΠ°ΠΊΡΠ΅ΡΠΈΡΡΠΈΠΊΠ°ΠΌ S. emersum. 
Therapeutic complement targeting in ANCA-associated vasculitides and thrombotic microangiopathy
Anti-neutrophil cytoplasmic antibody (ANCA)-associated vasculitides (AAVs) are a group of systemic autoimmune disorders characterized by necrotizing inflammation of medium-to-small vessels, a relative paucity of immune deposits, and an association with detectable circulating ANCAs. AAVs include granulomatosis with polyangiitis (renamed from Wegener's granulomatosis), microscopic polyangiitis, and eosinophilic granulomatosis with polyangiitis (Churg-Strauss syndrome). Until recently, AAVs have not been viewed as complement-mediated disorders. However, recent findings predominantly from animal studies demonstrated a crucial role of the complement system in the pathogenesis of AAVs. Complement activation or defects in its regulation have been described in an increasing number of acquired or genetically driven forms of thrombotic microangiopathy. Coinciding with this expanding spectrum of complement-mediated diseases, the question arises as to which AAV patients might benefit from a complement-targeted therapy. Therapies directed against the complement system point to the necessity of a genetic workup of genes of complement components and regulators in patients with AAV. Genetic testing together with pluripotent stem cells and bioinformatics tools may broaden our approach to the treatment of patients with aggressive forms of AAV
Constructions of regular algebras
Criterion of (Shilov) regularity for weighted algebras on a
locally compact abelian group is known by works of Beurling (1949) and
Domar (1956). In the present paper this criterion is extended to translation
invariant weighted algebras with . Regular algebras
are constructed on any sigma-compact abelian group . It was proved earlier
by the author that sigma-compactness is necessary (in the abelian case) for the
existence of weighted algebras with .Comment: Submitted to Mat. Sborni
High frequency magnetic oscillations of the organic metal -(ET)ZnBr(CHCl) in pulsed magnetic field of up to 81 T
De Haas-van Alphen oscillations of the organic metal
-(ET)ZnBr(CHCl) are studied in pulsed magnetic
fields up to 81 T. The long decay time of the pulse allows determining reliable
field-dependent amplitudes of Fourier components with frequencies up to several
kiloteslas. The Fourier spectrum is in agreement with the model of a linear
chain of coupled orbits. In this model, all the observed frequencies are linear
combinations of the frequency linked to the basic orbit and to the
magnetic-breakdown orbit .Comment: 6 pages, 4 figure
PROGRAMMABLE-GAIN AMPLIFIER FOR SENSOR APPLICATIONS
Programmable-gain amplifier for measuring sensor signals is designed. This amplifier contains various buffering cascades and filters, making this amplifier compatible with different kinds of sensors
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