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19
result(s) for
"Beker, Mustafa Çağlar"
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HMG-CoA reductase inhibition preserves testicular function after torsion/detorsion by modulating oxidative stress and AKT signaling
by
Keskin, İlknur
,
Kılıç, Ertuğrul
,
Yıldırım, Berna
in
1-Phosphatidylinositol 3-kinase
,
631/80
,
692/1807
2025
Testicular torsion (TT) is a urological emergency that results in ischemia/reperfusion (I/R) injury, leading to oxidative stress, cellular apoptosis, and impaired spermatogenesis. This study investigated the protective effects of the HMG-CoA reductase inhibitor rosuvastatin on TT-induced I/R injury and explored the underlying mechanisms. Male Balb/C mice (
n
= 28) were subjected to 720° testicular torsion for two hours, followed by 24 h of detorsion. Rosuvastatin was administered either acutely (post-torsion) or prophylactically (prior to injury). Histopathological evaluation, assessment of oxidative stress parameters, sperm motility and morphology analysis, and Western blot examination of survival and stress related signaling proteins (pAKT, pJNK1/2, pERK1/2, and Bcl-xL) were performed. Rosuvastatin treatment significantly reduced tissue damage decreased oxidative stress (as indicated by increased TAS and reduced TOS/OSI), and improved sperm motility and morphology. Both acute and prophylactic treatment regimens enhanced cell survival by increasing pAKT and Bcl-xL levels, reducing pERK1/2 activation, and modulating stress responsive JNK1/2 signaling. These findings suggest that rosuvastatin mitigates I/R induced testicular damage primarily through modulation of key intracellular pathways, particularly PI3K/AKT, and support its therapeutic potential in acute testicular injuries and related degenerative conditions.
Journal Article
GABAergic ventrolateral preoptic projection to dorsomedial hypothalamus recapitulates post-ischemic neuroprotection by hypothermia
2026
Therapeutic hypothermia by exogenous cooling induces potent neuroprotection. Post-stroke, therapeutic hypothermia so far did not translate into clinically applicable therapies due to hypothermia-associated side-effects compromising patient outcome. The hypothalamus contains two major thermoregulatory centers in the ventrolateral preoptic area (vlPOA) and dorsomedial hypothalamus (DMH), which are connected via gamma-aminobutyric acid (GABA)-ergic fibers. Using chemogenetic and optogenetic approaches, we explored the role of this GABAergic projection in regulating body temperature responses, cerebral blood flow, and ischemic injury in
Vgat-cre
mice exposed to transient middle cerebral artery occlusion (MCAo). Using a chemogenetic approach, we show that the inhibition of a set of GABAergic DMH
VGAT
neurons, which under physiological conditions induces hyperthermia, is essential to drive hypothermia, which decreases cerebral blood flow post-MCAo and protects against ischemic reperfusion injury via mechanisms involving preservation of astrocytic homeostatic functions. This phenotype is recapitulated by the optogenetic activation of the GABAergic vlPOA
VGAT
neurons, which similarly induces hypothermia and protects against ischemic injury. The GABAergic vlPOA
VGAT
DMH pathway provides a potent target for neuroprotective therapies. We hypothesize that modulating central temperature responses via this pathway may not elicit the undesirable side effects associated with exogenous brain cooling.
Thumbnail: Graphical abstract:
GABAergic vlPOA
VGAT
→ DMH pathway activation lowers body core temperature, limits post-ischemic infarct volume, and enhances neuronal survival by reducing reperfusion damage. Hypothermia was chemogenetically or optogenetically induced in mice exposed to 90 or 30 min middle cerebral artery occlusion (MCAo). Structural and functional consequences of GABAergic vlPOA
VGAT
→ DMH pathway modulation were assessed.
Journal Article
Exploring the Proteomic Signature of Diabetic Nephropathy: Implications for Early Diagnosis and Treatment
2025
Diabetic nephropathy (DN) is a leading cause of end-stage renal disease, characterized by progressive kidney dysfunction. Early detection and targeted therapies remain key challenges in managing DN. This study aims to identify proteomic alterations in DN patients compared to healthy controls, focusing on proteins involved in inflammation, oxidative stress, immune response, and metabolic dysregulation. Using mass spectrometry and advanced bioinformatics, we identified significant upregulation of proteins associated with platelet activation, immune regulation, and extracellular matrix remodeling, as well as downregulation of proteins linked to lipid metabolism, immune regulation, and structural stability. These findings highlight the molecular complexity of DN and suggest that altered protein expression plays a critical role in the progression of kidney damage. The identified proteins may serve as potential biomarkers for early diagnosis and therapeutic targets for DN. Our results underline the importance of proteomic analyses in advancing the understanding of DN pathogenesis and in developing strategies for personalized treatment to improve patient outcomes. Future research should focus on further elucidating these molecular mechanisms and their implications for clinical management.
Journal Article
The effects of topical liposomal resveratrol on incisional and excisional wound healing process
by
Ekrem Musa Özdemir
,
Nejda Bedri
,
Mehmet Yalçın Günal
in
Angiogenesis
,
Dermatology
,
Insulin-like growth factors
2019
Background and Design: The objective of this study was to investigate the wound healing activity of different concentrations of liposomal trans-resveratrol formulations on incisional and excisional wounds in rats. Materials and Methods: The wound healing effect was tested by an excisional and incisional wound model. Wound closure was measured for 12 days. On the 12th day of the study, maximal load, maximum stress, stress, and % of elongation values were evaluated in the incisional wound. In addition, angiogenesis, granulation tissue thickness, epidermal and dermal regeneration values, and macroscopic photographic analyses were evaluated in the excisional wound. Results: When the wound tissue surface healing rates were evaluated, similar effects were observed at the end of the 10th and 12th days between the 5% Res group and the commercial product containing 1% Centella asiatica extract used as the reference molecule. Histological evaluation showed that 1% Res and 5% Res groups induced significant wound healing activity compared to the control group. Furthermore, 1% Res and 5% Res groups increased wound healing rates by promoting granulation tissue, epidermal, and dermal regeneration as well as angiogenesis. Conclusion: Liposomal formulations containing 1% and 5% resveratrol were found to have positive effects on the healing process, both on excisional and incisional wound tissues.
Journal Article
Time-of-Day Dependent Neuronal Injury After Ischemic Stroke: Implication of Circadian Clock Transcriptional Factor Bmal1 and Survival Kinase AKT
2018
Occurrence of stroke cases displays a time-of-day variation in human. However, the mechanism linking circadian rhythm to the internal response mechanisms against pathophysiological events after ischemic stroke remained largely unknown. To this end, temporal changes in the susceptibility to ischemia/reperfusion (I/R) injury were investigated in mice in which the ischemic stroke induced at four different Zeitgeber time points with 6-h intervals (ZT0, ZT6, ZT12, and ZT18). Besides infarct volume and brain swelling, neuronal survival, apoptosis, ischemia, and circadian rhythm related proteins were examined using immunohistochemistry, Western blot, planar surface immune assay, and liquid chromatography–mass spectrometry tools. Here, we present evidence that midnight (ZT18; 24:00) I/R injury in mice resulted in significantly improved infarct volume, brain swelling, neurological deficit score, neuronal survival, and decreased apoptotic cell death compared with ischemia induced at other time points, which were associated with increased expressions of circadian proteins Bmal1, PerI, and Clock proteins and survival kinases AKT and Erk-1/2. Moreover, ribosomal protein S6, mTOR, and Bad were also significantly increased, while the levels of PRAS40, negative regulator of AKT and mTOR, and phosphorylated p53 were decreased at this time point compared to ZT0 (06:00). Furthermore, detailed proteomic analysis revealed significantly decreased CSKP, HBB-1/2, and HBA levels, while increased GNAZ, NEGR1, IMPCT, and PDE1B at midnight as compared with early morning. Our results indicate that nighttime I/R injury results in less severe neuronal damage, with increased neuronal survival, increased levels of survival kinases and circadian clock proteins, and also alters the circadian-related proteins.
Journal Article
Delayed Therapeutic Administration of Melatonin Enhances Neuronal Survival Through AKT and MAPK Signaling Pathways Following Focal Brain Ischemia in Mice
2022
Melatonin has a role in the cell survival signaling pathways as a candidate for secondary stroke prevention. Therefore, in the present study, the coordination of ipsilateral and contralateral hemispheres to evaluate delayed post-acute effect of melatonin was examined on recovery of the cell survival and apoptosis after stroke. Melatonin was administered (4 mg/kg/day) intraperitoneally for 45 days, starting 3 days after 30 min of middle cerebral artery occlusion. The genes and proteins related to the cell survival and apoptosis were investigated by immunofluorescence, western blotting, and RT-PCR techniques after behavioral experiments. Melatonin produced delayed neurological recovery by improving motor coordination on grip strength and rotarod tests. This neurological recovery was also reflected by high level of NeuN positive cells and low level of TUNEL-positive cells suggesting enhanced neuronal survival and reduced apoptosis at the fifty-fifth day of stroke. The increase of NGF, Nrp1, c-jun; activation of AKT; and dephosphorylation of ERK and JNK at the fifty-fifth day showed that cell survival and apoptosis signaling molecules compete to contribute to the remodeling of brain. Furthermore, an increase in the CREB and Atf-1 expressions suggested the melatonin’s strong reformative effect on neuronal regeneration. The contralateral hemisphere was more active at the latter stages of the molecular and functional regeneration which provides a further proof of principle about melatonin’s action on the promotion of brain plasticity and recovery after stroke.
Journal Article
Reduced folate carrier 1 is present in retinal microvessels and crucial for the inner blood retinal barrier integrity
2023
Background
Reduced folate carrier 1 (RFC1; SLC19a1) is the main responsible transporter for the B9 family of vitamins named folates, which are essential for normal tissue growth and development. While folate deficiency resulted in retinal vasculopathy, the expression and the role of RFC1 in blood-retinal barrier (BRB) are not well known.
Methods
We used whole mount retinas and trypsin digested microvessel samples of adult mice. To knockdown RFC1, we delivered RFC1-targeted short interfering RNA (RFC1-siRNA) intravitreally; while, to upregulate RFC1 we delivered lentiviral vector overexpressing RFC1. Retinal ischemia was induced 1-h by applying FeCl
3
to central retinal artery. We used RT-qPCR and Western blotting to determine RFC1. Endothelium (CD31), pericytes (PDGFR-beta, CD13, NG2), tight-junctions (Occludin, Claudin-5 and ZO-1), main basal membrane protein (Collagen-4), endogenous IgG and RFC1 were determined immunohistochemically.
Results
Our analyses on whole mount retinas and trypsin digested microvessel samples of adult mice revealed the presence of RFC1 in the inner BRB and colocalization with endothelial cells and pericytes. Knocking down RFC1 expression via siRNA delivery resulted in the disintegration of tight junction proteins and collagen-4 in twenty-four hours, which was accompanied by significant endogenous IgG extravasation. This indicated the impairment of BRB integrity after an abrupt RFC1 decrease. Furthermore, lentiviral vector-mediated RFC1 overexpression resulted in increased tight junction proteins and collagen-4, confirming the structural role of RFC1 in the inner BRB. Acute retinal ischemia decreased collagen-4 and occludin levels and led to an increase in RFC1. Besides, the pre-ischemic overexpression of RFC1 partially rescued collagen-4 and occludin levels which would be decreased after ischemia.
Conclusion
In conclusion, our study clarifies the presence of RFC1 protein in the inner BRB, which has recently been defined as hypoxia–immune-related gene in other tissues and offers a novel perspective of retinal RFC1. Hence, other than being a folate carrier, RFC1 is an acute regulator of the inner BRB in healthy and ischemic retinas.
Journal Article
Lithium promotes long-term neurological recovery after spinal cord injury in mice by enhancing neuronal survival, gray and white matter remodeling, and long-distance axonal regeneration
2022
Spinal cord injury induces neurological deficits associated with long-term functional impairments. Since the current treatments remain ineffective, novel therapeutic options are needed. Besides its effect on bipolar mood disorder, lithium was reported to have neuroprotective activity in different neurodegenerative conditions, including spinal cord injury. In spinal cord injury, the effects of lithium on long-term neurological recovery and neuroplasticity have not been assessed. We herein investigated the effects of intraperitoneally administered lithium chloride on motor coordination recovery, electromyography (EMG) responses, histopathological injury and remodeling, and axonal plasticity in mice exposed to spinal cord transection. At a dose of 0.2, but not 2.0 mmol/kg, lithium chloride enhanced motor coordination and locomotor activity starting at 28 days post-injury (dpi), as assessed by a set of behavioral tests. Following electrical stimulation proximal to the hemitransection, lithium chloride at 0.2 mmol/kg decreased the latency and increased the amplitude of EMG responses in the denervated hindlimb at 56 dpi. Functional recovery was associated with reduced gray and white matter atrophy rostral and caudal to the hemitransection, increased neuronal survival and reduced astrogliosis in the dorsal and ventral horns caudal to the hemitransection, and increased regeneration of long-distance axons proximal and distal to the lesion site in mice receiving 0.2 mmol/kg, but not 2 mmol/kg lithium chloride, as assessed by histochemical and immunohistochemical studies combined with anterograde tract tracing. Our results indicate that lithium chloride induces long-term neurological recovery and neuroplasticity following spinal cord injury.
Journal Article
Time dependent impact of perinatal hypoxia on growth hormone, insulin-like growth factor 1 and insulin-like growth factor binding protein-3
by
Kilic, Ertugrul
,
Süleymanoğlu, Selami
,
Caglayan, Ahmet Burak
in
Animals
,
Biochemistry
,
Biomedical and Life Sciences
2016
Hypoxic-ischemia (HI) is a widely used animal model to mimic the preterm or perinatal sublethal hypoxia, including hypoxic-ischemic encephalopathy. It causes diffuse neurodegeneration in the brain and results in mental retardation, hyperactivity, cerebral palsy, epilepsy and neuroendocrine disturbances. Herein, we examined acute and subacute correlations between neuronal degeneration and serum growth factor changes, including growth hormone (GH), insulin-like growth factor 1 (IGF-1) and insulin-like growth factor binding protein-3 (IGFBP-3) after hypoxic-ischemia (HI) in neonatal rats. In the acute phase of hypoxia, brain volume was increased significantly as compared with control animals, which was associated with reduced GH and IGF-1 secretions. Reduced neuronal survival and increased DNA fragmentation were also noticed in these animals. However, in the subacute phase of hypoxia, neuronal survival and brain volume were significantly decreased, accompanied by increased apoptotic cell death in the hippocampus and cortex. Serum GH, IGF-1, and IGFBP-3 levels were significantly reduced in the subacute phase of HI. Significant retardation in the brain and body development were noted in the subacute phase of hypoxia. Here, we provide evidence that serum levels of growth-hormone and factors were decreased in the acute and subacute phase of hypoxia, which was associated with increased DNA fragmentation and decreased neuronal survival.
Journal Article