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      KCI등재 SCOPUS SCIE

      Spectral and Hydrodynamic Studies of Complex Formation of Tetraalkoxy Substituted Zinc(II)phthalocyanines with Defatted and Nondefatted Bovine Serum Albumin

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      https://www.riss.kr/link?id=A105874658

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      다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

      Spectral, hydrodynamic and thermochemical studies have been demonstrated that tetraalkoxy substituted zinc(II)phthalocyanines form stable complexes with defatted and nondefatted bovine serum albumin.
      The phthalocyanines interact with BSA through heteroatoms of their peripheral substitutes. It was found that ZnPc(4-NH-CO-C6H4-OC3H7)4 is located in the protein subdomains IB and IIA whereas ZnPc(4-NHCO- C6H4-OC6H13)4 and ZnPc(4-NH-CO-C6H4-OC8H17)4 are immobilized on surface of the protein globule at a distance of not greater than 10 nm from the tryptophan residues in the positions 135 and 214 of the protein polypeptide chain. Zinc(II)phthalocyanines (ZnPc(4- NH-CO-C6H4-OC6H13)4 and ZnPc(4-NH-CO-C6H4- OC8H17)4) increase thermal stability of BSA.
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      Spectral, hydrodynamic and thermochemical studies have been demonstrated that tetraalkoxy substituted zinc(II)phthalocyanines form stable complexes with defatted and nondefatted bovine serum albumin. The phthalocyanines interact with BSA through hete...

      Spectral, hydrodynamic and thermochemical studies have been demonstrated that tetraalkoxy substituted zinc(II)phthalocyanines form stable complexes with defatted and nondefatted bovine serum albumin.
      The phthalocyanines interact with BSA through heteroatoms of their peripheral substitutes. It was found that ZnPc(4-NH-CO-C6H4-OC3H7)4 is located in the protein subdomains IB and IIA whereas ZnPc(4-NHCO- C6H4-OC6H13)4 and ZnPc(4-NH-CO-C6H4-OC8H17)4 are immobilized on surface of the protein globule at a distance of not greater than 10 nm from the tryptophan residues in the positions 135 and 214 of the protein polypeptide chain. Zinc(II)phthalocyanines (ZnPc(4- NH-CO-C6H4-OC6H13)4 and ZnPc(4-NH-CO-C6H4- OC8H17)4) increase thermal stability of BSA.

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      다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

      Spectral, hydrodynamic and thermochemical studies have been demonstrated that tetraalkoxy substituted zinc(II)phthalocyanines form stable complexes with defatted and nondefatted bovine serum albumin. The phthalocyanines interact with BSA through heteroatoms of their peripheral substitutes. It was found that ZnPc(4-NH-CO-C6H4-OC3 7)4 is located in the protein subdomains IB and IIA whereas ZnPc(4-NHCO- C6H4-OC6H13)4 and ZnPc(4-NH-CO-C6H4-OC8H17)4 are immobilized on surface of the protein globule at a distance of not greater than 10 nm from the tryptophan residues in the positions 135 and 214 of the protein polypeptide chain. Zinc(II)phthalocyanines (ZnPc(4- NH-CO-C6H4-OC6H13)4 and ZnPc(4-NH-CO-C6H4-OC8H17)4) increase thermal stability of BSA.
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      Spectral, hydrodynamic and thermochemical studies have been demonstrated that tetraalkoxy substituted zinc(II)phthalocyanines form stable complexes with defatted and nondefatted bovine serum albumin. The phthalocyanines interact with BSA through heter...

      Spectral, hydrodynamic and thermochemical studies have been demonstrated that tetraalkoxy substituted zinc(II)phthalocyanines form stable complexes with defatted and nondefatted bovine serum albumin. The phthalocyanines interact with BSA through heteroatoms of their peripheral substitutes. It was found that ZnPc(4-NH-CO-C6H4-OC3 7)4 is located in the protein subdomains IB and IIA whereas ZnPc(4-NHCO- C6H4-OC6H13)4 and ZnPc(4-NH-CO-C6H4-OC8H17)4 are immobilized on surface of the protein globule at a distance of not greater than 10 nm from the tryptophan residues in the positions 135 and 214 of the protein polypeptide chain. Zinc(II)phthalocyanines (ZnPc(4- NH-CO-C6H4-OC6H13)4 and ZnPc(4-NH-CO-C6H4-OC8H17)4) increase thermal stability of BSA.

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      참고문헌 (Reference)

      1 Durmuş, M., "Water-soluble quaternized mercaptopyridine-substituted zinc-phthalocyanines: synthesis, photophysical, photochemical and bovine serum albumin binding properties" 91 : 153-163, 2011

      2 Jokiel, M., "Use of a spectrofluorimetric method to monitor changes of human serum albumin thermal stability in the presence of polyamidoamine dendrimers" 16 : 149-152, 2006

      3 Farruggia, B., "The participation of human serum albumin domains in chemical and thermal unfolding" 20 : 81-89, 2001

      4 Fang, Y., "Structural changes accompanying human serum albumin’s binding of fatty acids are concerted" 1764 : 285-291, 2006

      5 Carter, D.C., "Preliminary crystallographic studies of four crystal forms of serum albumin" 226 : 1049-1052, 1994

      6 Xue, L., "Nitrile group as infrared probe for the characterization of the conformation of bovine serum albumin solubilized in reverse micelles" 97 : 858-863, 2012

      7 Valeur, B., "Molecular fluorescence:principles and applications" John Wiley & Sons 2012

      8 Kubát, P., "Modulation of porphyrin binding to serum albumin by pH" 1670 : 40-48, 2004

      9 Shaposhnikov, G., "Modified phthalocyanines and their structural analogs" KRASAND 2012

      10 Simard, J. R., "Location of high and low affinity fatty acid binding sites on human serum albumin revealed by NMR drugcompetition analysis" 361 : 336-351, 2006

      1 Durmuş, M., "Water-soluble quaternized mercaptopyridine-substituted zinc-phthalocyanines: synthesis, photophysical, photochemical and bovine serum albumin binding properties" 91 : 153-163, 2011

      2 Jokiel, M., "Use of a spectrofluorimetric method to monitor changes of human serum albumin thermal stability in the presence of polyamidoamine dendrimers" 16 : 149-152, 2006

      3 Farruggia, B., "The participation of human serum albumin domains in chemical and thermal unfolding" 20 : 81-89, 2001

      4 Fang, Y., "Structural changes accompanying human serum albumin’s binding of fatty acids are concerted" 1764 : 285-291, 2006

      5 Carter, D.C., "Preliminary crystallographic studies of four crystal forms of serum albumin" 226 : 1049-1052, 1994

      6 Xue, L., "Nitrile group as infrared probe for the characterization of the conformation of bovine serum albumin solubilized in reverse micelles" 97 : 858-863, 2012

      7 Valeur, B., "Molecular fluorescence:principles and applications" John Wiley & Sons 2012

      8 Kubát, P., "Modulation of porphyrin binding to serum albumin by pH" 1670 : 40-48, 2004

      9 Shaposhnikov, G., "Modified phthalocyanines and their structural analogs" KRASAND 2012

      10 Simard, J. R., "Location of high and low affinity fatty acid binding sites on human serum albumin revealed by NMR drugcompetition analysis" 361 : 336-351, 2006

      11 Lebedeva, N., "Influence of complex formation with tetraantraquinoporphyrazines and tetrasulphophthalocyanine on thermal stability of bovine serum albumin" 15 : 223-229, 2011

      12 Peters Jr, T., "All about albumin: biochemistry, genetics, and medical applications" Academic press 1995

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      학술지등록 한글명 : BioChip Journal
      외국어명 : BioChip Journal
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2013-10-01 평가 등재학술지 선정 (기타) KCI등재
      2011-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2009-01-01 평가 SCIE 등재 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.33 0.25 0.88
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.66 0.53 0.255 0.1
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