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Mankevich, M.

Publications and source records attributed to Mankevich, M..

3 recordsLinked to original sources

A Toxic Tau-PFKFB3 Circuit Reduces F2,6BP Levels and Drives Neurodegeneration

Alzheimers disease (AD) and related dementias are progressive neurodegenerative disorders manifested by aggregation of Tau and Amyloid beta (A{beta}). Emerging evidence suggests that metabolic dysregulation contributes to AD pathogenesis, yet how metabolic alterations interface with neuronal integrity remains unclear. Here, we identify dysfunction in PFKFB3-F2,6BP (fructose-2,6-bisphosphate) metabolic axis as a key feature of AD. We show that pathological Tau aggregates aberrantly sequester PFKFB3, limiting its activity and resulting in F2,6BP depletion. F2,6BP exerts protective effects through multiple convergent mechanisms: (i) direct activation of polynucleotide kinase 3-phosphatase (PNKP) to facilitate DNA strand break repair; (ii) transcriptional upregulation of the protein phosphatase 2A catalytic subunit (PP2CA) to limit Tau phosphorylation; (iii) stabilization of PFKFB3 to diminish its sequestration into aggregates; and (iv) direct inhibition of Tau aggregation. These findings establish F2,6BP as a central node linking metabolic regulation to both genomic stability and proteostasis in AD. Importantly, exogenous F2,6BP supplementation rescues multiple pathological features across diverse model systems, including induced neuronal cell lines (iN), primary neurons, organotypic hippocampal slice cultures, and in a Drosophila model of AD. These findings redefine F2,6BP as a metabolite that directly coordinates genome maintenance and proteostasis in neurons. Overall, this study identifies the PFKFB3-F2,6BP axis as a central driver of AD pathogenesis and a promising therapeutic target. HighlightsO_LITau aggregates sequester PFKFB3 depletes neuronal F2,6BP C_LIO_LIF2,6BP links metabolism to DNA repair and Tau proteostasis C_LIO_LIF2,6BP activates PNKP and upregulates PP2A to counter Tau pathology C_LIO_LIF2,6BP supplementation rescues AD phenotypes across models C_LI

neuroscience↗

Fructose-2,6-bisphosphate restores TDP-43 pathology-driven genome repair deficiency in motor neuron diseases

TAR DNA-binding protein 43 (TDP-43) proteinopathy plays a critical role in neurodegenerative diseases, including amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). We recently reported that TDP-43 plays an essential role in DNA double-strand break (DSB) repair via the non-homologous end-joining (NHEJ) pathway. Here, we provide evidence that the brain of patients with ALS exhibit persistent DNA damage in the transcribed regions of the genome. While investigating the mechanistic basis, we found that the activity of polynucleotide kinase 3-phosphatase (PNKP) was severely impaired in the nuclear extracts of patient brains and TDP-43-depleted cells. PNKP is a key player in DSB repair within the transcribed genome, where its 3-phosphate termini processing activity is crucial for preventing persistent DNA strand breaks and neuronal death. The inactivation of PNKP was due to the reduced level of its interacting partner, phosphofructo-2-kinase fructose 2,6 bisphosphatase (PFKFB3), and its biosynthetic product, fructose-2,6-bisphosphate (F2,6BP), an allosteric modulator of glycolysis. Recently, we have demonstrated that F2,6BP acts as a positive modulator of PNKP activity in vivo. Furthermore, F2,6BP supplementation in cultured ALS patient-derived neural progenitor stem cells (NPSCs) reduced the toxic aggregation of polyubiquitinated TDP-43 and cytosolic pTDP-43 (S409/410). Notably, F2,6BP supplementation restored the PNKP activity in the nuclear extracts from autopsied ALS/FTD brain tissues and patient iPSC-derived NPSCs harboring TDP-43 mutations. Importantly, F2,6BP administration significantly restored the genome integrity and motor phenotypes in a Drosophila model of ALS-TDP-43. Collectively, these findings underscore the therapeutic potential of F2,6BP in TDP-43 pathology-associated motor neuron diseases.

neuroscience↗

F2,6BP restores mitochondrial genome integrity in Huntingtons Disease

Several reports have indicated that impaired mitochondrial function contributes to the development and progression of Huntingtons disease (HD). Mitochondrial genome damage, particularly DNA strand breaks, is a potential cause for its compromised functionality. Here we show that the activity of polynucleotide kinase 3-phosphatase (PNKP), a critical DNA end-processing enzyme, is significantly decreased in the mitochondrial extract of HD patients brains due to a lower level of fructose-2,6 bisphosphate (F2,6BP), a biosynthetic product of 6-phosphofructo-2-kinase fructose-2,6-bisphosphatase 3 (PFKFB3). Such decrease in PNKP activity leads to persistent DNA strand breaks that are refractory to subsequent steps for repair completion. Both PFKFB3 and F2,6BP, an allosteric modulator of glycolysis, are also present in the mitochondria and PFKFB3 is part of a mitochondrial DNA repair complex containing HTT, PNKP, DNA Pol {gamma} (POLG) and Lig III. Notably, PNKP binds F2,6BP (Kd= 525{+/-}25 nM) and utilizes it as a cofactor. The levels of both F2,6BP and PFKFB3 are significantly decreased in the mitochondrial extract of HD mouse striatal neuronal cells and patients brain. Activity of PNKP is thus severely decreased in the mitochondrial extract; however, addition of F2,6BP restored its activity. Moreover, supplementation of F2,6BP in HD cells restored PFKFB3 level, mitochondrial genome integrity and partially restored mitochondrial membrane potential, mitochondrial respiration and prevented pathogenic aggregate formation. We also observed that supplementation with F2,6BP restored mitochondrial genome integrity in an HD Drosophila model. Our findings, therefore, suggest that F2,6BP-mediated restoration of PNKP activity could have a profound impact in ameliorating neurodegenerative symptoms in HD. SignificanceWe reported earlier the loss of PNKP activity in the nuclear extracts from HD patients brain. However, a glycolytic metabolite, F2,6BP, can restore PNKP activity and rescue organismal phenotypes in HD fly models. As PNKP is present in mitochondria and several reports indicate that mitochondrial dysfunction contributes to HD, we therefore analyzed PNKP activity in the mitochondrial extract. Surprisingly, we found that PFKFB3 and its product, F2,6BP are present in mitochondria, but significantly low in patients brains. Exogenous addition of F2,6BP restored PNKP activity in patients brain mitochondrial extract. Moreover, supplementing F2,6BP in HD cells and fruit flies restored mitochondrial genome integrity suggesting maintaining adequate intracellular F2,6BP levels is critical for proper functionality of PNKP and thereby of brain health.

neuroscience↗