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1.
Urologiia ; (6): 145-150, 2023 Dec.
Article in Russian | MEDLINE | ID: mdl-38156699

ABSTRACT

Recurrent bladder neck sclerosis is one of the common complications of endoscopic treatment of benign prostate hyperplasia, which often leads to multiple re-operations, including complex open and laparoscopic reconstructive procedures. One of the most promising minimally invasive methods for preventing recurrence of bladder neck sclerosis is balloon dilatation under transrectal ultrasound guidance. To improve the results of using this technique, a urethral catheter with a biopolymer coating, capable of depositing a drug and eluting it under the influence of diagnostic ultrasound, was proposed.


Subject(s)
Prostatic Hyperplasia , Transurethral Resection of Prostate , Urinary Bladder Neck Obstruction , Male , Humans , Prostate/pathology , Transurethral Resection of Prostate/methods , Urinary Bladder/diagnostic imaging , Urinary Bladder/surgery , Urinary Catheters/adverse effects , Sclerosis/complications , Sclerosis/pathology , Hyperplasia/complications , Hyperplasia/pathology , Prostatic Hyperplasia/complications , Urinary Bladder Neck Obstruction/complications , Ultrasonography , Treatment Outcome
2.
Adv Exp Med Biol ; 1269: 57-61, 2021.
Article in English | MEDLINE | ID: mdl-33966195

ABSTRACT

Here, we demonstrate the therapeutic effects of transcranial photobiomodulation (tPBM, 1267 nm, 32 J/cm2, a 9-day course) in mice with the injected model of Alzheimer's disease (AD) associated with accumulation of beta-amyloid (Aß) in the brain resulting in neurocognitive deficit vs. the control group (CG) (the neurological severity score (NNS), AD 3.67 ± 0.58 vs. CG 1.00 ± 0.26%, p < 0.05) and mild cerebral hypoxia (AD 72 ± 6% vs. CG 97 ± 2%, p < 0.001). The course of tPBM improved neurocognitive status of mice with AD (NNS, AD 2.03 ± 0.14 vs. CG 1.00 ± 0.26, vs. 2.03 ± 0.14, p < 0.05) due to stimulation of clearance of Aß from the brain via the meningeal lymphatic vessels (the immunohistochemical and confocal data) and an increase in blood oxygen saturation of the brain tissues (the pulse oximetry data) till 85 ± 2%, p < 0.05. These results open breakthrough strategies for non-pharmacological therapy of AD and clearly demonstrate that tPBM might be a promising therapeutic target for preventing or delaying AD based on stimulation of oxygenation of the brain tissues and activation of clearance of toxic molecules via the cerebral lymphatics.


Subject(s)
Alzheimer Disease , Amyloid beta-Peptides , Alzheimer Disease/therapy , Amyloid beta-Peptides/metabolism , Animals , Brain/metabolism , Mice , Mice, Transgenic , Oximetry , Oxygen
3.
Adv Exp Med Biol ; 1269: 197-202, 2021.
Article in English | MEDLINE | ID: mdl-33966217

ABSTRACT

The blood-brain barrier (BBB) poses a significant challenge for drug delivery to the brain. The limitations of our knowledge about the nature of BBB explain the slow progress in the therapy of brain diseases and absence of methods for drug delivery to the brain in clinical practice. Here, we show that the BBB opens for high-molecular-weight compounds after exposure to loud sound (100 dB 370 Hz) in rats. The role of stress induced by loud sound and the systemic and molecular mechanisms behind it are discussed in the framework of the BBB. This opens an informative platform for novel fundamental knowledge about the nature of BBB and for the development of a noninvasive brain drug delivery technology.


Subject(s)
Blood-Brain Barrier , Brain , Animals , Biological Transport , Drug Delivery Systems , Rats , Sound
4.
Proc Biol Sci ; 287(1941): 20202337, 2020 12 23.
Article in English | MEDLINE | ID: mdl-33323086

ABSTRACT

Music plays a more important role in our life than just being an entertainment. For example, it can be used as an anti-anxiety therapy of human and animals. However, the unsafe listening of loud music triggers hearing loss in millions of young people and professional musicians (rock, jazz and symphony orchestra) owing to exposure to damaging sound levels using personal audio devices or at noisy entertainment venues including nightclubs, discotheques, bars and concerts. Therefore, it is important to understand how loud music affects us. In this pioneering study on healthy mice, we discover that loud rock music below the safety threshold causes opening of the blood-brain barrier (OBBB), which plays a vital role in protecting the brain from viruses, bacteria and toxins. We clearly demonstrate that listening to loud music during 2 h in an intermittent adaptive regime is accompanied by delayed (1 h after music exposure) and short-lasting to (during 1-4 h) OBBB to low and high molecular weight compounds without cochlear and brain impairments. We present the systemic and molecular mechanisms responsible for music-induced OBBB. Finally, a revision of our traditional knowledge about the BBB nature and the novel strategies in optimizing of sound-mediated methods for brain drug delivery are discussed.


Subject(s)
Blood-Brain Barrier/physiology , Music , Adolescent , Animals , Female , Health Status , Humans , Male , Mice , Noise , Sound
5.
Chaos ; 28(1): 013124, 2018 Jan.
Article in English | MEDLINE | ID: mdl-29390623

ABSTRACT

The scaling properties of complex processes may be highly influenced by the presence of various artifacts in experimental recordings. Their removal produces changes in the singularity spectra and the Hölder exponents as compared with the original artifacts-free data, and these changes are significantly different for positively correlated and anti-correlated signals. While signals with power-law correlations are nearly insensitive to the loss of significant parts of data, the removal of fragments of anti-correlated signals is more crucial for further data analysis. In this work, we study the ability of characterizing scaling features of chaotic and stochastic processes with distinct correlation properties using a wavelet-based multifractal analysis, and discuss differences between the effect of missed data for synchronous and asynchronous oscillatory regimes. We show that even an extreme data loss allows characterizing physiological processes such as the cerebral blood flow dynamics.

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