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1.
Shibata The serotype-specific glucose side chain of rhamnose-glucose polysaccharides is essential for adsorption of bacteriophage M102 to Streptococcus mutans // FEMS Microbiol. Lett., 2009. Vol. 294, N 1.-С.68-73

2.
Spitali M. Structure of lipopolysaccharide side-chain of Pseudomonas syringae pv. lachrymans Strain NCPPB 1096, in relation to O-serogroup // J. Phytopathol., 2000. Vol. 148, N 11-12.-С.563-568

3.
Metabolic binding of misonidazole to mouse tissues. Comparison between labels on the ring and side chain, and the production of tritiated water // Biochem. Pharmacol., 1989. Vol. 38, N 4.-С.665-670

4.
Shibata The serotype-specific glucose side chain of rhamnose-glucose polysaccharides is essential for adsorption of bacteriophage M102 to Streptococcus mutans // FEMS Microbiol. Lett., 2009. Vol. 294, N 1.-С.68-73

5.
Spitali M. Structure of the lipopolysaccharide side-chain of Pseudomonas syringae pv. tomato strain CFBP 2545 in relation to O-serotype // J. Phytopathol., 2000. Vol. 148, N 11-12.-С.555-561

6.
Spitali M. Structure of the lipopolysaccharide side-chain of Pseudomonas syringae pv. tomato strain CFBP 2545 in relation to O-serotype // J. Phytopathol., 2000. Vol. 148, N 11-12.-С.555-561

7.
Spitali M. Structure of lipopolysaccharide side-chain of Pseudomonas syringae pv. lachrymans Strain NCPPB 1096, in relation to O-serogroup // J. Phytopathol., 2000. Vol. 148, N 11-12.-С.563-568

8.
Spitali M. Structure of the lipopolysaccharide side-chain of Pseudomonas syringae pv. tomato strain CFBP 2545 in relation to O-serotype // J. Phytopathol., 2000. Vol. 148, N 11-12.-С.555-561

9.
Bjorkhem Mechanism of degradation of the steroid side chain in the formation of bile acids // J. Lipid Res., 1992. Vol. 33, N 4.-С.455-471

10.
Senciall Ian R. Corticosteroid side chain oxidations II: Metabolism of 20-dihydro steroids and evidence for steroid acid formation by direct oxidation at C-21 // J. Steroid Biochem. Molec. Biol., 1992. Vol. 41, N 2.-С.151-160

11.
Actinobacterial acyl coenzyme A synthetases involved in steroid side-chain catabolism // J. Bacteriol., 2014. Vol. 196, N 3.-С.579-587

12.
Side-chain derivatives of biologically active nucleosides 1: Side-Chain analogs of 3'-azido-3'-deoxythymidine (AZT) // J. Med. Chem., 1992. Vol. 35, N 16.-С.3016- 3023

13.
McComb J.C. Investigations on the influence of headgroup substitution and isoprene side-chain length in the function of primary and secondary quinones of bacterial reaction centers // Biochim. et. Biophys. Acta. Bioenerg, 1990. Vol. 1015, N 1.-С.156-171

14.
Patil Side chain cleavage of some steroid drug precursors by Mycobacterium mutants // Indian. J. Exp. Biol., 1989. Vol. 27, N 4.-С.374-375

15.
Hales Dale B. Glucocorticoid and cyclic adenosine 3',5'-monophosphate-mediated induction of cholesterol sidechain cleavage cytochrome P450 (Р450[s][c][c]) in MA-10 tumor leydig cells. Increases in mRNA are cycloheximide sensitive // Endocrinology, 1990. Vol. 126, N 6.-С.2800-2808

16.
Side chain conjugation prevents bacterial 7-dehydroxylation of bile acids // J. Biol. Chem., 1990. Vol. 265, N 19.-С.10925-10928

17.
Noguchi Interaction of Q[A] with a histidine side chain in photosystem II // Plant and Cell Physiol., 1999. Vol. 40, Suppl..-С.33

18.
Corrie John E.T. Synthesis of [{15}N] and [side-chain 1-{13}C] isotopomers of 1-(2-nitrophenyl)ethyl phosphates // J. Labell. Compounds and Radiopharm., 1996. Vol. 38, N 4.-С.404-420

19.
Haaman-Reperant Effect of transforming growth factor 'бета'-1 on the cholesterol side-chain cleavage system in the adrenal gland of sheep fetuses and newborns // Endocrinology, 1996. Vol. 137, N 3.-С.886-892

20.
Haaman-Reperant Effect of transforming growth factor 'бета'-1 on the cholesterol side-chain cleavage system in the adrenal gland of sheep fetuses and newborns // Endocrinology, 1996. Vol. 137, N 3.-С.886-892

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