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point decrease » point increase (Expand Search)
step decrease » sizes decrease (Expand Search), teer decrease (Expand Search), we decrease (Expand Search)
a decrease » _ decrease (Expand Search), _ decreased (Expand Search), _ decreases (Expand Search)
2 step » _ step (Expand Search), a step (Expand Search)
point decrease » point increase (Expand Search)
step decrease » sizes decrease (Expand Search), teer decrease (Expand Search), we decrease (Expand Search)
a decrease » _ decrease (Expand Search), _ decreased (Expand Search), _ decreases (Expand Search)
2 step » _ step (Expand Search), a step (Expand Search)
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17901
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17902
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17903
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17904
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17905
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17906
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17907
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17908
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17909
Cobalt-Catalyzed C(sp<sup>2</sup>)–C(sp<sup>3</sup>) Suzuki–Miyaura Cross-Coupling Enabled by Well-Defined Precatalysts with L,X-Type Ligands
Published 2022“…The protocol enabled efficient C–C bond formation with a host of nucleophiles and electrophiles (36 examples, 34–95%) with precatalyst loadings of 5 mol %. …”
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17910
Cobalt-Catalyzed C(sp<sup>2</sup>)–C(sp<sup>3</sup>) Suzuki–Miyaura Cross-Coupling Enabled by Well-Defined Precatalysts with L,X-Type Ligands
Published 2022“…The protocol enabled efficient C–C bond formation with a host of nucleophiles and electrophiles (36 examples, 34–95%) with precatalyst loadings of 5 mol %. …”
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17911
Cobalt-Catalyzed C(sp<sup>2</sup>)–C(sp<sup>3</sup>) Suzuki–Miyaura Cross-Coupling Enabled by Well-Defined Precatalysts with L,X-Type Ligands
Published 2022“…The protocol enabled efficient C–C bond formation with a host of nucleophiles and electrophiles (36 examples, 34–95%) with precatalyst loadings of 5 mol %. …”
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17912
Cobalt-Catalyzed C(sp<sup>2</sup>)–C(sp<sup>3</sup>) Suzuki–Miyaura Cross-Coupling Enabled by Well-Defined Precatalysts with L,X-Type Ligands
Published 2022“…The protocol enabled efficient C–C bond formation with a host of nucleophiles and electrophiles (36 examples, 34–95%) with precatalyst loadings of 5 mol %. …”
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17913
Cobalt-Catalyzed C(sp<sup>2</sup>)–C(sp<sup>3</sup>) Suzuki–Miyaura Cross-Coupling Enabled by Well-Defined Precatalysts with L,X-Type Ligands
Published 2022“…The protocol enabled efficient C–C bond formation with a host of nucleophiles and electrophiles (36 examples, 34–95%) with precatalyst loadings of 5 mol %. …”
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17914
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17915
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17916
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17917
HIS-24 associates with promoters of <i>mab-5</i> and <i>egl-5</i> genes.
Published 2012“…<p>(A) <i>mab-5</i> and <i>egl-5</i> genes are tightly clustered on chromosome III. …”
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17918
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17919
Analysis of the ratio of 3′-to-3′ to 5′-to-5′ among different classes of putative SA pair sets
Published 2011“…All rights reserved</p> In both genomes, compared with that in the whole putative SA pair set, the percentage of 3′-to-3′ putative SA pairs increases in inversely expressed, co-expressed, and especially conserved putative SA pair sets, while the percentage of 5′-to-5′ putative SA pairs decreases (). As a result, the ratio of 3′-to-3′ to 5′-to-5′ pair significantly increases from 1.6 and 1.8 in the whole putative SA set, to 8.5 and 9.8 in the conserved and co-expressed putative SA pair set in the human and mouse genome, respectively.…”
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17920
Table5_Low FNDC5/Irisin expression is associated with aggressive phenotypes in gastric cancer.XLSX
Published 2022“…<p>Background: FNDC5 belongs to the family of proteins called fibronectin type III domain-containing which carry out a variety of functions. …”