Quinone methides (QM) can be delivered to alklyate specific sites with a single strand DNA through target promoted alkylation. Previous experimental results indicated that alkylation by DNA-QM self-adduct was too slow for application in a biological system. A new quinone methide precursor (QMP) with enhanced reactivity is necessary to accelerate the reaction. Previous study showed that an electron donating group present in the QMP would facilitate the generation of QM from the precursor and its regeneration from the reversible alkylation adducts. Therefore, new QMPs with increased electron density were designed. An electron rich QMP2 was successfully synthesized through a benzylaldehyde derivative. As predicted, DNA-QM self-adduct forma...
Alkylation of DNA by a variety of small molecules has been found to be both a cause of cancer and a ...
Exogenously generated electrophiles are capable of alkylating DNA. If not repaired, the resulting DN...
Quinone methides (QMs) are electrophilic intermediates that can be generated in vivo to alkylate DNA...
Alkylation of DNA by a variety of small molecules has been found to be both a cause of cancer and a ...
Alkylation of DNA has been found to cause cancer and also to serve as its treatment. Quinone methid...
Quinone methides (QMs) generated in vivo can alkylate DNA and function as anti-cancer drugs. Delive...
Exogenously generated electrophiles are capable of alkylating DNA. If not repaired, the resulting D...
A novel target-promoted DNA alkylation system was designed, which consists of a DNA intercalating/al...
Quinone methides (QMs) are electrophilic intermediates that can be generated in vivo to alkylate DNA...
DNA alkylating agents are commonly considered toxic due to the irreversible nature of the lesions th...
New bifunctional quinone methide (QM) precursors, bisphenols 2a–2e, and monofunctional QM precursor ...
Iron complex chemistry that opens a new door to the medicinal and pharmaceutical worlds is the aim o...
Quinone methides (QMs) are transient reactive species that can be efficiently generated from stable ...
Abstract Environmental toxins and a number of drugs have been shown to react with and cause damage...
<i>ortho</i>-Quinone methides (<i>ortho</i>-QM) and <i>para</i>-quinone methides are generated by xe...
Alkylation of DNA by a variety of small molecules has been found to be both a cause of cancer and a ...
Exogenously generated electrophiles are capable of alkylating DNA. If not repaired, the resulting DN...
Quinone methides (QMs) are electrophilic intermediates that can be generated in vivo to alkylate DNA...
Alkylation of DNA by a variety of small molecules has been found to be both a cause of cancer and a ...
Alkylation of DNA has been found to cause cancer and also to serve as its treatment. Quinone methid...
Quinone methides (QMs) generated in vivo can alkylate DNA and function as anti-cancer drugs. Delive...
Exogenously generated electrophiles are capable of alkylating DNA. If not repaired, the resulting D...
A novel target-promoted DNA alkylation system was designed, which consists of a DNA intercalating/al...
Quinone methides (QMs) are electrophilic intermediates that can be generated in vivo to alkylate DNA...
DNA alkylating agents are commonly considered toxic due to the irreversible nature of the lesions th...
New bifunctional quinone methide (QM) precursors, bisphenols 2a–2e, and monofunctional QM precursor ...
Iron complex chemistry that opens a new door to the medicinal and pharmaceutical worlds is the aim o...
Quinone methides (QMs) are transient reactive species that can be efficiently generated from stable ...
Abstract Environmental toxins and a number of drugs have been shown to react with and cause damage...
<i>ortho</i>-Quinone methides (<i>ortho</i>-QM) and <i>para</i>-quinone methides are generated by xe...
Alkylation of DNA by a variety of small molecules has been found to be both a cause of cancer and a ...
Exogenously generated electrophiles are capable of alkylating DNA. If not repaired, the resulting DN...
Quinone methides (QMs) are electrophilic intermediates that can be generated in vivo to alkylate DNA...