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dc.contributorDepartment of Applied Biology and Chemical Technologyen_US
dc.contributor.advisorKwok, Wai Ming (ABCT)en_US
dc.creatorChow, Chiu Lok Joshua-
dc.identifier.urihttps://theses.lib.polyu.edu.hk/handle/200/14419-
dc.languageEnglishen_US
dc.publisherHong Kong Polytechnic Universityen_US
dc.rightsAll rights reserveden_US
dc.titleFemtosecond time-resolved spectroscopic study on excited state dynamics of DNA and RNA guanine quadruplexes and their binding interaction with Thioflavin Ten_US
dcterms.abstractGuanine-quadruplexes (GQs) are non-canonical, four-stranded nucleic acid structures with diverse topologies. They are essential for genome stability and play a crucial role in biotechnology. Consequently, probing GQs has become a significant research focus. However, the factors governing the intrinsic fluorescence dynamics and deactivation pathways of GQs, as well as those of the fluorescent ligand Thioflavin T (ThT) when probing GQs, remain insufficiently understood. This thesis addresses this gap by employing steady-state and femtosecond broadband time-resolved spectroscopic techniques to systematically investigate the excited-state dynamics of GQs and ThT binding with GQs.en_US
dcterms.abstractFirst, intrinsic fluorescence dynamics of human telomeric and promoter region DNA GQs with varying structures were characterized. Human telomeric GQs exhibit a deactivation mechanism involving two long-lived charge transfer (CT) G-G excimers coupled with proton transfer (PT) in the core region. The energy relaxation and lifetimes of these CT excimers are governed by the G-tetrad stacking mode and planarity. For instance, a larger overlapping region between neighboring G-tetrads promotes greater CT character, resulting in lower-energy radiative relaxation. In a more planar G-tetrad, PT is further facilitated, which extends the CT excimer lifetime. In contrast, promoter region GQs lack obvious excimers with CT behavior and instead display long-lived neutral excimers and previously unreported CT exciplex states. The CT exciplex involves PT between guanine bases in the G-tetrad and thymidine or 2′-deoxyadenosine in the loop region, resulting in markedly red-shifted fluorescence.en_US
dcterms.abstractSecond, human telomeric RNA GQs reveal multichannel deactivation pathways, including ultrafast (<1 ps) CT formation, which is not observed in DNA GQs, and a high-energy CT excimer deactivated rapidly via PT in the tetrad core. The emission energy of these CT excimers is similar to that of neutral excimers (~330 nm) in DNA GQs. The different nature of these excimers can be attributed to the greater structural rigidity of RNA GQs compared to DNA GQs. On the other hand, there is a unique exciplex without PT involvement, exhibiting strongly red-shifted fluorescence and originating from CT between adenosine and uridine bases in the loop region.en_US
dcterms.abstractThird, the fluorescence dynamics of ThT were elucidated. ThT's fluorescence originates from a locally excited state and is quenched after transition to a twisted intramolecular charge transfer (TICT) state. The binding of ThT to GQs inhibits the formation of the TICT state. The degree of inhibition is dependent on GQ topology, resulting in various degrees of fluorescence enhancement. Tighter binding sites more strongly restrict the twisting of ThT, leading to greater fluorescence enhancement. Furthermore, an ultrafast FRET process (<3 ps) occurs in GQ-ThT complexes after GQs excitation, with GQs acting as the donors and ThT as the acceptor. The efficiency of FRET is based on the GQ structure and the ThT binding mode.en_US
dcterms.abstractThese insights into the excitation dynamics of GQs and bound ThT in GQ advance the understanding of GQ and ThT deactivation mechanisms and facilitate the development of GQ-based probing techniques and nanobiotechnological applications.en_US
dcterms.extentxlii, 265 pages : color illustrationsen_US
dcterms.isPartOfPolyU Electronic Thesesen_US
dcterms.issued2026en_US
dcterms.educationalLevelPh.D.en_US
dcterms.educationalLevelAll Doctorateen_US
dcterms.LCSHQuadruplex nucleic acidsen_US
dcterms.LCSHFluorescent probesen_US
dcterms.LCSHHong Kong Polytechnic University -- Dissertationsen_US
dcterms.accessRightsopen accessen_US

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Please use this identifier to cite or link to this item: https://theses.lib.polyu.edu.hk/handle/200/14419