Skip to content

2 papers indexed here

We haven’t gathered this author’s papers yet. Follow them and we’ll fetch their work.

Not the right person? Other researchers publish under this name.

Aug 2026

Iminophosphorane-naphthalimide derivatives as multi-responsive fluorescent sensors for Sn(II) ion detection and intracellular pH imaging.

A series of iminophosphorane-functionalized naphthalimide derivatives (4a-4e) were synthesized and evaluated as fluorescent sensors. Among them, the trimethylammonium-functionalized derivative 4e exhibited pronounced solvent-dependent fluorescence, characteristic of an intramolecular charge transfer (ICT) process. In acetonitrile, 4e showed excellent selectivity toward Sn(II) ions, accompanied by significant fluorescence quenching and a spectral shift resulting from preferential coordination of Sn(II) to the iminophosphorane nitrogen atom. Fluorescence titration experiments revealed sensitive detection of Sn(II) with a limit of detection of 86.3 nM and a 1:1 binding stoichiometry. These findings were supported by Job's plot analysis and Stern-Volmer studies, which indicated a static quenching mechanism. In addition, probe 4e displayed marked fluorescence enhancement over the acidic pH range of 3.0-6.0, which was attributed to protonation-regulated photoinduced electron transfer (PET). Complementary DFT and TD-DFT calculations provided molecular-level insight into the sensing mechanisms by elucidating the Sn(II)-induced ICT inhibition and protonation-regulated PET modulation. The probe also exhibited good stability, high pH selectivity, and low cytotoxicity toward RAW264.7 macrophage cells. Fluorescence imaging studies further demonstrated its ability to monitor intracellular pH variations, with fluorescence being suppressed in lipopolysaccharide-stimulated macrophages as a result of increased intracellular acidification. These results highlight the potential of 4e as a multifunctional fluorescent probe for environmental sensing and biological imaging.

Quynh Nguyen Nhu Pham, Thitiporn Pattarakankul, T. Palaga et al. · 0 citations
Open access Jul 2026

MGMT deficiency augments STING-mediated inflammatory responses accompanied by metabolic alterations in macrophages.

The cGAS-STING pathway senses cytosolic DNA derived from both pathogens and host cells and plays a central role in innate immune responses. O6-methylguanine-DNA methyltransferase (MGMT) is a DNA repair enzyme that removes alkylation-induced DNA lesions and modulates macrophage inflammatory responses. Here, we investigated the role of MGMT in macrophage responses to STING activation. Bone marrow-derived macrophages (BMMs) from Lyz2ΔMgmt mice produced higher levels of IL6, TNFα, and IFNβ following stimulation with the STING agonist DMXAA, accompanied by increased phosphorylation of TBK1 and IRF3. Lyz2ΔMgmt BMMs also exhibited increased expression of CD86, CD40, and CD120a (TNFRI), but reduced MHC class II expression. Metabolic flux analysis revealed enhanced mitochondrial oxidative respiration, increased ATP production, and greater maximal respiratory capacity, whereas glycolytic capacity remained unchanged. In addition, DMXAA-stimulated Lyz2ΔMgmt BMMs displayed increased γH2AX levels and reduced activation of the energy sensor AMPK and autophagy. Transcriptomic analysis further identified enrichment of pathways associated with cellular respiration. Collectively, these findings indicate that MGMT deficiency is associated with enhanced STING-induced inflammatory responses, altered cellular metabolism, and increased DNA damage in macrophages.

Pornrat Kongkavitoon, Atsadang Boonmee, Thitiporn Pattarakankul et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.