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ng decrease » _ decrease (Expand Search), we decrease (Expand Search), gy decreased (Expand Search)
nn decrease » _ decrease (Expand Search), mean decrease (Expand Search), gy decreased (Expand Search)
d decrease » _ decrease (Expand Search), _ decreased (Expand Search), _ decreases (Expand Search)
a decrease » _ decrease (Expand Search), _ decreased (Expand Search), _ decreases (Expand Search)
ng decrease » _ decrease (Expand Search), we decrease (Expand Search), gy decreased (Expand Search)
nn decrease » _ decrease (Expand Search), mean decrease (Expand Search), gy decreased (Expand Search)
d decrease » _ decrease (Expand Search), _ decreased (Expand Search), _ decreases (Expand Search)
a decrease » _ decrease (Expand Search), _ decreased (Expand Search), _ decreases (Expand Search)
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861
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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862
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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863
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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864
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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865
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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866
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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867
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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868
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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869
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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870
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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871
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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872
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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873
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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874
Chloro Half-Sandwich Osmium(II) Complexes: Influence of Chelated N,N-Ligands on Hydrolysis, Guanine Binding, and Cytotoxicity
Published 2007“…The Os<sup>II</sup> complexes hydrolyze up to 100 times more slowly than their Ru<sup>II</sup> analogues. The p<i>K</i>*<sub>a</sub> of the aqua adducts decreased with a similar trend (p<i>K</i>*<sub>a</sub> = 6.3 and 5.8 for en and phen adducts, respectively). …”
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875
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876
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877
Decreased levels of dCAP-D3/Condensin II result in a local loss of retrotransposon sequence <i>in vivo</i> and <i>in vitro</i>.
Published 2013“…C) PCRs performed as described in (A) on DNA from flies expressing two mutant alleles of a second Condensin II subunit, <i>dCap-H2</i> (<i>dCap-H2<sup>Z3-0019</sup>/dCap-H2<sup>Z3-</sup></i><sup>5163</sup>), demonstrates identical results seen for <i>dCap-D3</i> mutants. …”
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878
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879
Upcycling of Postconsumer Recyclate Polypropylene into Low Warping and High Toughness 3D Printable Filaments
Published 2025“…Incorporation of poly(butylene adipate-<i>co</i>-terephthalate) (PBAT) along with maleic anhydride grafted polypropylene (MAPP) in specific proportions led to a significant enhancement in mechanical properties, miscibility, crystallization behavior, and 3D printability. rPP/PBAT blends with 20 wt % PBAT and 10 wt % MAPP exhibited a 62-fold enhancement in elongation at break over rPP (from 1.88 to 118.29%) and a 72-fold increase in toughness (from 2 to 143.60 kJ/m<sup>3</sup>) with almost similar tensile strength. …”
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880
Upcycling of Postconsumer Recyclate Polypropylene into Low Warping and High Toughness 3D Printable Filaments
Published 2025“…Incorporation of poly(butylene adipate-<i>co</i>-terephthalate) (PBAT) along with maleic anhydride grafted polypropylene (MAPP) in specific proportions led to a significant enhancement in mechanical properties, miscibility, crystallization behavior, and 3D printability. rPP/PBAT blends with 20 wt % PBAT and 10 wt % MAPP exhibited a 62-fold enhancement in elongation at break over rPP (from 1.88 to 118.29%) and a 72-fold increase in toughness (from 2 to 143.60 kJ/m<sup>3</sup>) with almost similar tensile strength. …”