scholarly journals STUDY ON SALT DAMAGE PREVENTION AND PLANT'S GROWTH EFFECTS BY CAPILLARY BARRIER USING CRUSHED SHELL PARTICLES

2017 ◽  
Vol 73 (2) ◽  
pp. I_899-I_904
Author(s):  
Kaoru KOBAYASI ◽  
Ayaka ISHIZAWA ◽  
Arashi SOMA ◽  
Toshihiro MORII
2018 ◽  
Vol 74 (2) ◽  
pp. I_276-I_281
Author(s):  
Kaoru KOBAYASHI ◽  
Keiya MATSUURA ◽  
Kazunobu MATSUMOTO ◽  
Toshihiro MORII

2013 ◽  
Vol 69 (2) ◽  
pp. I_574-I_579
Author(s):  
Kaoru KOBAYASHI ◽  
Kazunobu MATSUMOTO ◽  
Toshihiro MORII ◽  
Mitsuhiro INOUE

2014 ◽  
Vol 70 (2) ◽  
pp. I_1092-I_1097
Author(s):  
Kaoru KOBAYASHI ◽  
Kazunobu MATSUMOTO ◽  
Toshihiro MORII ◽  
Satoru NAKAFUSA ◽  
Nobuyuki TORII

1979 ◽  
Vol 42 (02) ◽  
pp. 548-555 ◽  
Author(s):  
Charles A Owen ◽  
Kenneth G Mann ◽  
Frederic C McDuffie

SummaryWhen 125I-labeled canine prothrombin was given to normal adult dogs intravenously, it was calculated that 240% of the plasma prothrombin crossed the capillary barrier per day, 410% of the interstitial prothrombin returned to the blood stream daily, and 79% of the plasmatic prothrombin was catabolized per day. These data are in close agreement with those observed for bovine prothrombin in calves by Takeda (1970).When derived from normal dog prothrombin, prethrombin-1 is a mixture of 2 polypeptides, one larger than the other, and both present in about equal amounts. The longer peptide, “prethrombin-1-long,” was catabolized twice as fast as prothrombin, and the shorter, “prethrombin-1-short,” 4 times faster. Prothrombin fragment-1 was catabolized by the normal dog still more rapidly.The catabolism of prothrombin was not accelerated in 3 dogs receiving continuous infusions of a thromboplastic emulsion of dog brain. Nor was the level of prothrombin in their plasma remarkably altered.


Robotics 98 ◽  
1998 ◽  
Author(s):  
Steven L. Lorenc ◽  
Leonhard E. Bernold
Keyword(s):  

2020 ◽  
Vol 65 (10) ◽  
pp. 904
Author(s):  
V. O. Zamorskyi ◽  
Ya. M. Lytvynenko ◽  
A. M. Pogorily ◽  
A. I. Tovstolytkin ◽  
S. O. Solopan ◽  
...  

Magnetic properties of the sets of Fe3O4(core)/CoFe2O4(shell) composite nanoparticles with a core diameter of about 6.3 nm and various shell thicknesses (0, 1.0, and 2.5 nm), as well as the mixtures of Fe3O4 and CoFe2O4 nanoparticles taken in the ratios corresponding to the core/shell material contents in the former case, have been studied. The results of magnetic research showed that the coating of magnetic nanoparticles with a shell gives rise to the appearance of two simultaneous effects: the modification of the core/shell interface parameters and the parameter change in both the nanoparticle’s core and shell themselves. As a result, the core/shell particles acquire new characteristics that are inherent neither to Fe3O4 nor to CoFe2O4. The obtained results open the way to the optimization and adaptation of the parameters of the core/shell spinel-ferrite-based nanoparticles for their application in various technological and biomedical domains.


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