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Biocompatible graphene nanosheets tethered with poly-gamma glutamic acid for anticancer therapy : Poly-gamma glutamic acid가 코팅된 생체적합 그래핀 나노시트를 이용한 항암치료

DC Field Value Language
dc.contributor.advisor오유경-
dc.contributor.author문희원-
dc.date.accessioned2017-07-19T11:09:29Z-
dc.date.available2018-10-25-
dc.date.issued2016-08-
dc.identifier.other000000136389-
dc.identifier.urihttps://hdl.handle.net/10371/133406-
dc.description학위논문 (석사)-- 서울대학교 융합과학기술대학원 : 바이오제약학과, 2016. 8. 오유경.-
dc.description.abstractHere, I report that poly gamma glutamic acid (-PGA)-modified graphene could improve hemocompatibility and biocompatibility for enhanced in vivo safety and therapeutic index of graphene-based nanomedicine. Phenylalanine-grafted -PGA (amphiphilic -PGA , APGA) was synthesized and coated on reduced graphene oxide (rGO) via non-covalent interaction resulting APGA-coated rGO (ArGO). Modification of APGA on rGO did not interrupt photothermal activity of rGO, showing similar increase of temperature upon near-infrared (NIR) laser irradiation. ArGO revealed prolonged dispersion stability under physiological fluids over 4weeks whereas rGO in a plain form or physical mixture with -PGA was immediately deposited under same conditions. Although rGO in a plain form or physical mixture with -PGA form aggregation with red blood cells from at a rGO dose of 31mg/l ArGO showed much higher hemocompatibility upto rGO dose of 250 mg/l. Adding of -PGA did not decrease acute lethal rate of rGO, resulting 0 % survival rate at a rGO dose of 50 mg/kg, however, ArGO showed 100% survival rate of animals after intravenous injection at a same dose. Systemic administration of ArGO facilitated prolonged blood retention of rGO over 8 h post-dosing and significantly enhanced tumor accumulation in SCC7 tumor-bearing mice at 24 h post-dosing as compared with rGO-treated mice which resulting temperature increase to 50.2 ± 0.7oC at tumor sites upon NIR laser irradiation. Single irradiation of ArGO-treated mice revealed tumor ablation effect whereas tumor volumes of untreated and rGO-treated mice rapidly grew. Our results provides an evidence that biocompatible graphene via non-covalent modification of APGA would potentiate clinical applications of graphene-based nanomedicine.-
dc.description.tableofcontentsI. Introduction 8

II. Material and methods 10
2.1 Synthesis of amphiphilic-PGA derivative 10
2.2 Preparation of rGO nanosheets 11
2.3 Preparation of PHEPGA coated rGO nanosheets 11
2.4 Size and zeta potential measurement 12
2.5 Stability in physiological conditions 12
2.6 Animals 13
2.7 Red blood cell aggregation assay 13
2.8 Acute toxicity tests of rGO and ArGO nanosheets 14
2.9 Pharmacokinetic study 14
2.10 In vivo molecular imaging 16
2.11 In vivo photothermal tumor ablation study 16
2.12 Statistics 18

III. Results 19
3.1 Synthesis and characterization of APGA 19
3.2 Characterization of ArGO nanosheets 21
3.3 Stability and safety of ArGO nanosheets 24
3.4 Pharmacokinetic profile 27
3.5. In vivo tumor tissue distribution of ArGO nanosheets 30
3.6 In vivo photothermal antitumor effect of ArGO nanosheets 33

IV. Discussion 40

V. Conclusion 43

논문 초록 44

VI. Reference 46
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dc.formatapplication/pdf-
dc.format.extent1634181 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 융합과학기술대학원-
dc.subjectPoly gamma glutamic acid derivative-
dc.subjectGraphene nanosheets-
dc.subjectReduced graphene oxide-
dc.subjectSurface functionalization-
dc.subjectIn vivo safety-
dc.subjectPhotothermal therapy-
dc.subjectAnticancer therapy-
dc.subject.ddc610-
dc.titleBiocompatible graphene nanosheets tethered with poly-gamma glutamic acid for anticancer therapy-
dc.title.alternativePoly-gamma glutamic acid가 코팅된 생체적합 그래핀 나노시트를 이용한 항암치료-
dc.typeThesis-
dc.description.degreeMaster-
dc.citation.pages47-
dc.contributor.affiliation융합과학기술대학원 분자의학 및 바이오제약학과-
dc.date.awarded2016-08-
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