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Nature Communications· 2026Q1

Nano-NucleOTAC aracılığıyla Z-DNA dönüşümü tüberküloz basili biyofilmlerini bozar ve antibakteriyel bağışıklığı aktive eder

Nano-NucleOTAC-mediated Z-DNA transformation disrupts mycobacterium tuberculosis biofilms and activates antibacterial immunity

Deliang Liu, Pengfei Zhao, Yang Zhou, Zhuojun He ve diğerleri

Kısa özet

Nano-NucleOTAC adlı yeni bir nanopartikül, Z-DNA'yı hedefleyip dönüştürerek Mycobacterium tuberculosis (Mtb) biyofilmlerini etkili bir şekilde parçalamakta, bu da konakçı bağışıklık yanıtlarını güçlendirmekte ve fare modelleri ile klinik örneklerde tedavi sonuçlarını iyileştirmektedir.

Yapay zekâ ile başlık ve abstract'tan üretildi; tam metin okunmaz.

Özet (abstract)

The biofilms of Mycobacterium Tuberculosis (Mtb) use extracellular DNA (eDNA) as a protective structural scaffold that shields resident bacteria from host immunity and antibiotics, promoting persistent infection. An FDA-approved DNase can partially hydrolyze eDNA but has limited affinity and nucleolytic activity against Z-form DNA (Z-DNA). After confirming the abundance of Z-DNA in Mtb biofilms, we develop Nano-NucleOTAC, a nano-nucleolysis targeting chimera that combines an eDNA-binding ligand (lactoferrin), a DNA intercalator (chloroquine) and DNase. Nano-NucleOTAC anchors to Z-DNA in Mtb H37Ra biofilms, enabling effective biofilm degradation via Z-DNA transformation and enzymatic cleavage. Following treatment, dispersed Mtb H37Ra clusters induce neutrophil extracellular trap (NET) formation and cytokine secretion (TNF, IL-1β, and IL-10) to recruit macrophages, while NET remodeling and nucleolysis enhance macrophage bactericidal effect vs. DNase alone. In mouse lung infection models, Nano-NucleOTAC improves lung drug retention, reduces pathology, and reactivates host immune responses. It also demonstrates high efficacy against Mtb strains of varying virulence (H37Ra, H37Rv) and non-tuberculous mycobacteria (Mycobacterium smegmatis). In clinical sputum samples, Nano-NucleOTAC potentiates rifampicin efficacy, and enhances neutrophil and macrophage antibacterial immunity in bronchoalveolar lavage fluid (BALF) and pus. This safe, versatile nucleic-acid-targeting strategy modulates bacterial biophysical barriers and host immunity to address biofilm-associated multidrug-resistant infections. Extracellular DNA (eDNA) from tuberculosis can protect bacteria from host immune responses and antibiotics and can contain Z form eDNA which is harder for DNase to hydrolyze. Here the authors use a nanoparticle system to more specifically target eDNA and the Z form and show cleavage of Z-DNA and improvement of immune responses against TB infection in mice.

Yazarların özeti; kaynağından alınmıştır. Nature Communications, 2026 · DOI ↗

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Infectious DiseasesMedicine