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1.
J Am Chem Soc ; 142(6): 2876-2888, 2020 02 12.
Article in English | MEDLINE | ID: mdl-31990532

ABSTRACT

The signal transducer and activator of transcription 3 (STAT3) protein is a master regulator of most key hallmarks and enablers of cancer, including cell proliferation and the response to DNA damage. G-Quadruplex (G4) structures are four-stranded noncanonical DNA structures enriched at telomeres and oncogenes' promoters. In cancer cells, stabilization of G4 DNAs leads to replication stress and DNA damage accumulation and is therefore considered a promising target for oncotherapy. Here, we designed and synthesized novel quinazoline-based compounds that simultaneously and selectively affect these two well-recognized cancer targets, G4 DNA structures and the STAT3 protein. Using a combination of in vitro assays, NMR, and molecular dynamics simulations, we show that these small, uncharged compounds not only bind to the STAT3 protein but also stabilize G4 structures. In human cultured cells, the compounds inhibit phosphorylation-dependent activation of STAT3 without affecting the antiapoptotic factor STAT1 and cause increased formation of G4 structures, as revealed by the use of a G4 DNA-specific antibody. As a result, treated cells show slower DNA replication, DNA damage checkpoint activation, and an increased apoptotic rate. Importantly, cancer cells are more sensitive to these molecules compared to noncancerous cell lines. This is the first report of a promising class of compounds that not only targets the DNA damage cancer response machinery but also simultaneously inhibits the STAT3-induced cancer cell proliferation, demonstrating a novel approach in cancer therapy.


Subject(s)
G-Quadruplexes , Neoplasms/pathology , Quinazolines/chemistry , STAT3 Transcription Factor/metabolism , Cell Death , Humans , Ligands , Neoplasms/metabolism
2.
Proc Natl Acad Sci U S A ; 114(41): E8770-E8779, 2017 10 10.
Article in English | MEDLINE | ID: mdl-28973889

ABSTRACT

Intracellular chloride ([Cl-]i) and pH (pHi) are fundamental regulators of neuronal excitability. They exert wide-ranging effects on synaptic signaling and plasticity and on development and disorders of the brain. The ideal technique to elucidate the underlying ionic mechanisms is quantitative and combined two-photon imaging of [Cl-]i and pHi, but this has never been performed at the cellular level in vivo. Here, by using a genetically encoded fluorescent sensor that includes a spectroscopic reference (an element insensitive to Cl- and pH), we show that ratiometric imaging is strongly affected by the optical properties of the brain. We have designed a method that fully corrects for this source of error. Parallel measurements of [Cl-]i and pHi at the single-cell level in the mouse cortex showed the in vivo presence of the widely discussed developmental fall in [Cl-]i and the role of the K-Cl cotransporter KCC2 in this process. Then, we introduce a dynamic two-photon excitation protocol to simultaneously determine the changes of pHi and [Cl-]i in response to hypercapnia and seizure activity.


Subject(s)
Chlorides/metabolism , Cytoplasm/metabolism , Hippocampus/metabolism , Optical Imaging/methods , Photons , Pyramidal Cells/metabolism , Sodium-Potassium-Chloride Symporters/metabolism , Animals , Animals, Newborn , Hippocampus/cytology , Hydrogen-Ion Concentration , Mice , Pyramidal Cells/cytology
3.
Mol Pharm ; 10(1): 249-60, 2013 Jan 07.
Article in English | MEDLINE | ID: mdl-23163881

ABSTRACT

Dendrimers have been described as one of the most tunable and therefore potentially applicable nanoparticles both for diagnostics and therapy. Recently, in order to realize drug delivery agents, most of the effort has been dedicated to the development of dendrimers that could internalize into the cells and target specific intracellular compartments in vitro and in vivo. Here, we describe cell internalization properties and diffusion of G4 and G4-C12 modified PAMAM dendrimers in primary neuronal cultures and in the CNS of live animals. Confocal imaging on primary neurons reveals that dendrimers are able to cross the cell membrane and reach intracellular localization following endocytosis. Moreover, functionalization of PAMAMs has a dramatic effect on their ability to diffuse in the CNS tissue in vivo and penetrate living neurons as shown by intraparenchymal or intraventricular injections. 100 nM G4-C12 PAMAM dendrimer already induces dramatic apoptotic cell death of neurons in vitro. On the contrary, G4 PAMAM does not induce apoptotic cell death of neural cells in the sub-micromolar range of concentration and induces low microglia activation in brain tissue after a week. Our detailed description of dendrimer distribution patterns in the CNS will facilitate the design of tailored nanomaterials in light of future clinical applications.


Subject(s)
Apoptosis/drug effects , Brain/drug effects , Brain/metabolism , Dendrimers/chemistry , Dendrimers/pharmacokinetics , Nylons/chemistry , Nylons/pharmacokinetics , Animals , Astrocytes/drug effects , Astrocytes/metabolism , Calcium/metabolism , Cell Death/drug effects , Cell Membrane/metabolism , Cells, Cultured , Dendrimers/toxicity , Diffusion , Endocytosis/drug effects , Endocytosis/physiology , Mice , Microglia/drug effects , Microglia/metabolism , Neurons/drug effects , Neurons/metabolism , Nylons/toxicity , Visual Cortex/drug effects , Visual Cortex/metabolism
4.
J Vis Exp ; (79)2013 Sep 10.
Article in English | MEDLINE | ID: mdl-24056638

ABSTRACT

The development of fluorescent indicators represented a revolution for life sciences. Genetically encoded and synthetic fluorophores with sensing abilities allowed the visualization of biologically relevant species with high spatial and temporal resolution. Synthetic dyes are of particular interest thanks to their high tunability and the wide range of measureable analytes. However, these molecules suffer several limitations related to small molecule behavior (poor solubility, difficulties in targeting, often no ratiometric imaging allowed). In this work we introduce the development of dendrimer-based sensors and present a procedure for pH measurement in vitro, in living cells and in vivo. We choose dendrimers as ideal platform for our sensors for their many desirable properties (monodispersity, tunable properties, multivalency) that made them a widely used scaffold for several biomedical devices. The conjugation of fluorescent pH indicators to the dendrimer scaffold led to an enhancement of their sensing performances. In particular dendrimers exhibit reduced cell leakage, improved intracellular targeting and allow ratiometric measurements. These novel sensors were successfully employed to measure pH in living HeLa cells and in vivo in mouse brain.


Subject(s)
Fluorescent Dyes/chemistry , Animals , Brain Chemistry , Dendrimers/chemical synthesis , Dendrimers/chemistry , Female , Fluorescent Dyes/chemical synthesis , HeLa Cells , Humans , Hydrogen-Ion Concentration , Male , Mice , Mice, Inbred C57BL
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