Добавил:
kiopkiopkiop18@yandex.ru t.me/Prokururor I Вовсе не секретарь, но почту проверяю Опубликованный материал нарушает ваши авторские права? Сообщите нам.
Вуз: Предмет: Файл:

Ординатура / Хирургия / Библиотека им академика М.И. Перельмана / Книга_5887_Библиотеки_им_академика_М_И_Перельмана

.pdf
Скачиваний:
0
Добавлен:
02.09.2026
Размер:
21 Мб
Скачать
156
https://t.me/medicina_free
NeuroPhytomedicine
FIGURE 8.5 Neurophytomedicine and biotechnology.
8.6 FUTURE PROSPECTIVE OF PHYTOMEDICINE IN DISEASE CONTROL
The ongoing environmental issues related to climate change lead to serious health problems in humans. The conventional allopathic medication process becomes incapable of dealing with these ongoing challenges as it is unable to cure the root causes of the diseases. Under this scenario, traditional medicinal practices like Ayurveda are gaining importance. The importance of phytomedicine is increasing day by day in order to achieve sustainability in the health care sector. Underthese circumstances, the advancement of phytomedicine with the help of modern technology becomes a necessary step in order to improve the health of humans. The application of modern technologies like nanotechnology, biotech­nology, and genetic engineering improves the quality and efciency of phyto­medicines. The genomic, proteomic, and transcriptomic study of medicinal plants leads to the advancement of phytomedicines. Biotechnology will increase the
157Application of Neurophytomedicine
https://t.me/medicina_free
productivity and efciency of medicinal plants, resulting in advancements in both the health and agricultural sectors. The application of nanotechnology enables sustainableand eco-friendly growth of medicinal plants by increasing productiv­ity through the application of nanofertilizers and nanoremediators. The in vivo efcacy of neurophytomedicines will be increased by the application of nanocarri­ers that will lead to effective targeted and non-targeted drug delivery. The produc­tion of bioactive secondary metabolites will be increased in the plant body by the application of specially engineered genes through nanocarriers. The phytokinetic study of neurophytomedicines can be improved by using nanosensors, which will allow for a more detailed in vivo study of neurophytomedicine mechanism. The neuroinformatic study reveals the detailed biological mechanisms of the nervous system, whereas the bioinformatic study of the plant extracts leads us to study the bioactive mechanisms of phytoconstituents. It results in the development of more effective neurophytomedicines for the sustainable treatment of neurological diseases (Figure 8.6).
FIGURE 8.6 Future prospective of neurophytomedicine.
158
https://t.me/medicina_free
The detailed study of neuroinformatics facilitates the preparation of databases for the biological functions of the nervous system. The neuroinformatic study of all sensory, motor, and interneurons activities must be improved in order to develop effective phytotherapeutic techniques for the treatment of nervous system dysfunc­tions as well as psychological disorders.
Moreover, the phytochemicals have the potential to act as potential biomarkers by effectively interacting with the DNA, proteins, and other biomolecules. It will help to study the pharmacokinetic mechanism of the medicinal products within the nervous system, leading to the development of research in the elds of neurology, pharmacol­ogy, and herbal medicine.
Modern biotechnological innovations enable the development of new herbal plants that produce more medicinal secondary metabolites. It will facilitate the development of the eld of herbal medicine and also improve the pharmacokinetic efciency of the phytochemicals in the nervous system.
The development of nanophytomedicine improves the in vivo efcacy of phyto­medicines by improving phytochemical bioavailability and delivery mechanisms in the body.
The promotion of neurophytomedicine also facilitates the development of tribal populations, as a large proportion of herbal plants belonging to tribal areas have potential therapeutic properties. It also increases the availability of herbal drugs. Furthermore, many tribes have unique knowledge about the use of phytomedicines that can be incorporated into formal medical sciences for the benet of both sidesof society. The use of nanotechnology and biotechnology increases the in vivo ef­cacy of neurophytomedicines by increasing the solubility and bioavailability fac­tors of herbal products. The phytochemicals have already shown efciency in the treatment of serious pandemics like COVID-19. The mental stress and trauma gen­erated due to the change in social behavior resulting from the recent outbreak of COVID-19 viruses can be effectively mitigated by the use of phytomedicines. The health policy should focus on increasing the acceptability of neurophytomedicines by replacing traditional allopathic medicines for the effective treatment of sensi­tive nervous system diseases as well as behavioral disorders. Neurophytomedicines require additional in vitro and in vivo research before they can be used effectively. The promotion of traditional Ayurvedic plant products in the treatment of chronic diseases enhances the scope of rural employment and income for small and marginal farmers associated with it.
NeuroPhytomedicine
8.7 CONCLUSION
The allopathic approaches to medicinal treatment based on the remediation of a target disease are becoming an outdated idea in today’s scenario as the prevalence of chronic diseases is increasing due to the changing nature of the environment. The improvement of overall body function and the boosting of the immune sys­tem become the basis of modern medicinal treatment, just like in ancient times. Phytomedicines are gaining importance in the effective treatment of chronic dis­eases due to their potential to improve the efciency of removing the root cause of disease by keeping the balance among the physiological, mental, and emotional
Application of Neurophytomedicine
https://t.me/medicina_free
159
health of human beings. The nervous system is one of the most important and sensi­tive physiological systems, as it controls other body functions. The risk of allopathic neurological disease dosage increases due to the risk of side effects causing major damage to healthy neurons. On the other hand, herbal medicines focus on the repair of the overall nervous system, reducing the risk of side effects. The advancement of modern technologies like nanotechnology and biotechnology improves the efciency of phytomedicines. The rapid development of the eld of bioinformatics leads to the emergence of neuroinformatics, which enables the detailed study of the mechanisms of the nervous system. In this way, the eld of herbal medicine is developing through the application of advanced techniques. The adoption of ayurvedic medicine instead of conventional allopathic medicines promotes the healthy growth of the human population under the current challenges of global warming and climate change. The increasing use of phytomedicines also facilitates the egalitarian economic develop­ment of society by expanding the scope of the primary sector. The improvement of tribal populations is also another component of the promotion of Ayurveda. The emergence of neurophytomedicine plays a signicant role in the achievement of sus­tainable development in the health sector. It also promotes economic growth and the development of the economy.
REFERENCES
1. Khodadadi, Samaneh; Role of Herbal Medicine in Boosting Immune System; Immunopathologia Persa, Volume 1, Issue 1; January 7, 2015
2. J. Isbill, Jonathan; Kandiah, Jayanthi; Kruzliakova, Natalie; Opportunities for Health Promotion: Highlighting Herbs and Spices to Improve Immune Support and Well­Being; Integrative Medicine, Volume 19, Issue 5; October, 2020
3. Srivastava, A.; Srivastava, P.; Pandey, A.; Khanna, V. K.; Pant, A. B.; Phytomedicine: A Potential Alternative Medicine in Controlling Neurological Disorders; New Look to Phytomedicine, Advancements in Herbal Products as Novel Drug Leads, pp. 625–655; 2019; DOI: 10.1016/B978-0-12-814619-4.00025-2
4. Wink, Michael; Modes of Action of Herbal Medicines and Plant Seconda ry Metabolites; MDPI; Medicines, Volume 2; November 30, 2015; p. 251; September 8, 286; DOI: 10.3390/
medicines2030251
5. Puri, Vivek; Kanojia, Neha; Sharma, Ameya; Huanbutta, Kampanart; Dheer, Divya; Sangnim, Tanikan; Natural Product-Based Pharmacological Studies for Neurological Disorders; Frontier Pharmacology, Neuropharmacology; November 7, 2022; DOI: 10.3389/
fph a r.2022.1011740
6. Phani Kumar, G.; Khanum, Farhath; Neuroprotective Potential of Phytochemicals; Pharmacogonsy Reviews, Volume 6, Issue 12; 2012; DOI: 10.4103/0973-7847.99898
7. Chikezie, Paul C.; Ibegbulem, Chiedozie O.; Mbagwu, Ferdinand N.; Bioactive Principles from Medicinal Plants; Research Journal of Phytochemistry, Volume 9, Issue 3; November 30, 2015; pp. 88–115; DOI: 10.3923/rjphyto.2015.88.115
8. Eddouks, Mohamed; Chattopadhyay, Debprasad; Feo, Vincenzo De; Cho, WilliamC; Medicinal Plants in the Prevention and Treatment of Chronic Diseases; Evidence­Based Complementary and Alternative Medicine; Hindawi Publishing Corporation, Volume 25, 2012; DOI: 10.1155/2012/458274
9. Dogra, Kuldip S.; Chauhan, S.; Jalal, Jeewan S.; Assessment of Indian Medicinal Plants for the Treatment of Asthma; Journal of Medicinal Plant Research, Volume 9, Issue 32; November 30, 2015; p. 851; August 13, 862; DOI: 10.5897/JMPR2015.5890
160
https://t.me/medicina_free
10. Ahvazi, Maryam; Khalighi-Sigaroodi, Farahnaz; Charkhchiyan, Mohammad M.; Mojab, Faraz; Mozaffarian, Vali A.; Zakeri, Hamideh; Introduction of Medicinal Plant Species With Most Traditional Usage in Almut Region; Iranian Journal of Pharmaceutical Research, Volume 11, Issue 1; pp. 185–194; 2012
11. Parasuraman, Subramani; Thing, Gan S.; Dhanaraj, Sokkalingam A.; Polyherbal Formulation: Concept of Ayurveda; Pharmacognosy Reviews, Volume 8, Issue 16; November 30, 2014; pp. 73–80; DOI: 10.4103/0973-7847.134229
12. Katiyar, Chandrakant; Gupta, Arun; Kanjilal, Satyajyoti; Katiyar, Shefali; Drug Discovery from Plant Sources: An Integrated Approach; AYU, Volume 33, Issue 1; November 30, 2012; pp. 10–19; DOI: 10.4103/0974-8520.10 0295
13. Pan, Si-Yuan; Zhou, Shu-Feng; Gao, Si-Hua; Yu, Zhi-Ling; Zhang, Shuo-Feng; Tang, Min-Ke; Sun, Jian-Ning; Ma, Dik-Lung; Han, Yi-Fan; Fong, Wang-Fun; Ko, Kam­Ming; New Perspectives on How to Discover Drugs from Herbal Medicines: CAM’s Outstanding Contribution on Modern Therapeutics; Evidence-Based Complementary and Alternative Medicine, Hindawi, 2013; DOI: 10.1155/2013/627375
14. Djordjevic, Soa M.; From Medical Plant Raw Material to Herbal Remedies, intecho­pen; 2017; DOI: 10.5772/66618
15. Bisht, Lata; Verma, Ram; Allopolyherbal Formulation and Their Strategies; Journal of Phytochemistry & Biochemistry, Volume 1, Issue 1; November 30, 2017
16. Gunasekaran, Thirumurugan; Haile, Tedesse; Nigusse, Tedele; Dhanaraju, Magharla D.; Nanotechnology: an Effective Tool for Enhancing Bioavailability and Bioactivity of Phytomedicine; Asian Pacic Journal of Tropical Medicine, Volume 4; November 30, 2014; pp. S1–S7; DOI: 10.12980/APJTB.4.2014C980
17. Nzenguang, V. A.; McCutcheon, S. C.; Phytoremediation of Perchlorate. In: McCutcheon SC, Schnoor JL , editors. Phytoremediation: Transformation and Control of Contaminants. New Jersey: John Wiley and Sons, Inc.; pp. 863–885, 2003
18. Mandal, Asit; Purakayastha, Tapan; Ramana, Sivakoti; Neenu, Sathyaseelan; Bhaduri, Debarati; Chakraborty, Koushik; Manna, Madhab; Rao, Annangi S.; Status on Phytoremediation of Heavy Metals in India- a Review; International Journal of Stress Management, Volume 5, Issue 4; November 30, 2014; p. 553; December, 560; DOI: 10.5958/
0976-4038.2014.00609.5
19. Idrees, Muhammad; Role of Nanotechnology in Medical Sciences: A Review; International Journal of Innovative Drug Discovery, Volume 5, Issue 1; pp. 14–24; January, 2015
20. Anjum, Sumaira; Ishaque, Sara; Fatima, Hijab; Farooq, Wajiha; Hano, Christophe; Abbasi, Bilal H.; Anjum, Iram; Emerging Applications of Nanotechnology in Healthcare Systems: Grand Challenges and Perspectives; MDPI, Pharmaceuticals, 14, 707; July 21, 2021; DOI: https://doi.org/10.3390/ph14080707
21. Sahebnasagh, Adeldeh; Eghbali, Samira; Sagha, Fatemeh; Sureda, Antoni; Avan, Razieh; Neurohormetic Phytochemicals in the Pathogenesis of Neurodegenerative Diseases; Immun Ageing, Volume 19, Issue 36; August 11, 2022; DOI: 10.1186/s12979-
022-00292-x
NeuroPhytomedicine
Role of
https://t.me/medicina_free
9
Phytopharmaceuticals as Adjuncts in Treatment of Glioblastoma Multiforme
Ameya Kothekar, Rajesh Pradhan, and Rajeev Taliyan
9.1 INTRODUCTION
Glioma is an aggressive type of solid tumour associated with the central nervous sys­tem (CNS) which develops from the glial cells or supporting cells. According to the latest, World Health Organization (WHO) classication gliomas are further divided into classes/grades I, II, III, and IV. This classication is done based on pathological examination of the malignancy degree of the tumour utilizing molecular informa­tion (Louis et al, 2016). This classication is important in the clinical scenario as it helps in determining the type and mode of treatment. Grade I tumours are slow­growing neoplasms that can be treated surgically. Grade II tumours are tissue inva­sive and have a high chance of recurrence despite their low capacity for proliferation. Grade IV gliomas are the most treacherous and it is the nal stage where the tumour becomes malignant with a signicant risk of death (Louis et al, 2014).
Glioblastoma/glioblastoma multiforme (GBM), with a WHO grade 4, is the most advanced malignant brain cancer. It is the second most common brain tumour after meningioma. Intracranial radiation, ionic radiation, and rare genetic disorders like type 1 and 2 neurobromatosis are the major factors responsible for GBMs (Salvati et al, 2003). However, other factors like environmental stresses, smoking, drink­ing, and organochlorides from pesticides have shown no conclusive proof to cause GBM. Poor prognosis and a median patient survival time of 12–15 months after diagnosis are the major concerns in GBM (Wen and Kesari, 2008). In total, 95% of the tumours arise in the supratentorial region and less than 5% originate in the cere­bral hemispheres and brainstem (Nakada et al, 2011). Though the occurrenceof this cancer is lower than other cancers like colon, lung, and breast cancer, the average years of life lost is about 20 years, thus representing a signicant problem in oncol­ogy. Moreover, the prognosis of GBM has hardly changed since the early 1970s. Even after decades of study, glioblastoma is still one of the most dangerous and feared cancers. Therefore, the molecular mechanisms must be well studied which can help in better managing and designing effective therapeutic regimens with signicant results. The rst line of treatment is still surgery by chemotherapy and
161DOI: 10.1201/9781003389781-9
162 NeuroPhytomedicine
https://t.me/medicina_free
radiation. Despite its moderate effect and debatable efcacy, chemotherapy has been a routine therapeutic option for glioblastoma. The role of chemotherapy is impor­tant in treating glioblastoma. GBM is renowned for the development of chemoresis­tance. This is a key impediment during the development of an effective therapeutic regime. Temozolomide (TMZ), an oral alkylating agent, is the rst line of drug for GBM. Methylguanine-DNA methyl transferase (MGMT), a TMZ metabolite, induces intrinsic resistance to TMZ and is the reason for complications associ­ated with TMZ. After, many studies aimed to explore more effective and efcient chemotherapeutic targets, bioactive has emerged as excellent adjuncts to traditional chemotherapy. Plants have a vast array of phytochemicals with the capacity to target invasive brain tumours and alter oncogenic pathways to aid in causing apoptosis. These phytopharmaceuticals also inhibit the activity of various oncogenic proteins that are overexpressed in cancer and are responsible for invasion, metastasis, chemo­therapy resistance, and angiogenesis.
In this chapter, the scope of the bioactive as anti-cancer agents against GBM has been discussed. This chapter also includes their mechanism of action, associated limitations, and regulatory considerations.
9.2 PATHOGENESIS OF GLIOBLASTOMA MULTIFORME
Understanding the pathophysiology is essential for creating prospective chemothera­peutic drugs as well as for discovering disease biomarkers (refer Figure 9.1). Based on the presence or absence of lesions, GBM can be divided into two categories: Primary and secondary. Primary GBM arises without any pre-existing tumours or neoplasia (Agnihotri et al, 2013). Secondary tumours develop from precursor lesions like astro­cytoma or from other lower-grade gliomas within 5–10 years of diagnosis (Cloughesy
FIGURE 9.1 Schematic drawing depicting characteristics of glioblastoma multiforme (GBM).
163Role of Phytopharmaceuticals
https://t.me/medicina_free
et al, 2014). Based on the transcriptional characteristics, previously there were four classes of glioblastoma classical, neural, pro-neural, and mesenchymal. However, comprehensive longitudinal analysis of the GBM tumour transcriptome points towards the existence of three distinct forms of GBM, that is, classical, pro-neural, and mesenchymal. Tumour-specic biomarkers play an important role in the identi­cation of therapeutic targets. MGMT, IDH (isocitrate dehydrogenase) 1, and IDH2 are some of the most common biomarkers of glioblastoma (Marumoto and Saya, 2012). A representative diagram for the pathogenesis of GBM has been depicted in Figure 9.1.
9.2.1 unique histoPAthology of glioBlAstomA multiforme
GBM is characterized by small cells with polymorphism, anaplasia, and signicant anisokaryosis. These cells are polygonal or spindle-shaped containing acidophilic cytoplasm and indistinct cellular borders. Their nuclei are oval or elongated, with coarsely clumped hyperchromatic chromatin and numerous discrete nucleoli in the centre or peri-centre. Conventional histologic characteristics of glioblastoma include cellular polymorphism, nuclear atypia, a high mitotic index, and pseudo­palisading cells. These pseudopalisading cells are exclusive to malignant glioma and serve as a protective barrier. Therefore, these cells are used as prognostic markers for advanced glioma. In glioblastoma, dense migratory zones of cells surround the necrotic tissue and are termed pseudopalisades or “false palisades.” Necrotic foci are among the most distinctive characteristics of GBM and have two distinct forms. Onetype is within the tumour’s central region and is a result of insufcient blood supply. The other form consists of tiny, irregularly shaped necrotic foci surrounded by radially oriented pseudopalisading zones. Due to vascular collapse and necrosis, the pseudopalisading cells co-localize to full their oxygen demand. This vicious cycle is the primary malignant pathway in cases of glioma. The presence of hypoxia also causes the activation of perivascular glioma cells. This leads to the generation of pro-angiogenic molecules that drive the formation of a new vasculature that increases and hastens the progression of GBM. Excessive vascular endothelial growth factor (VEGF) expression also causes endothelial cell over-proliferation, resulting in leaky and damaged blood vasculature. This inhibits the delivery of oxygen, medicines, and immune cells in the tumour microenvironment.
9.2.2 oncogenic PAthwAys
Many critical cellular functions, such as growth, differentiation, metabolism, and survival, are regulated by signal transduction pathways. In human cancer, many of these signalling pathways are disrupted. The biology and clinical behaviour of GBM have tremendously beneted from research into these signalling pathways (Figure 9.2). A more comprehensive understanding of signal transduction will aid in the development of innovative therapies for this deadly disease.
In patients with GBM, the expression of 12 genes were found to be strongly associated with the characteristic mortality rate. These 12 genes are E2F2 (cell cycle signalling pathway), CTBP2 (Notch signalling), MAFF (Nrf2 signalling), SLC2A3 (Nrf2 signalling), ECSIT (PI3K signalling), HSP90B1 (PI3K signalling),
164 NeuroPhytomedicine
https://t.me/medicina_free
FIGURE 9.2 Oncogenic signalling pathways involved in GBM.
TNFRSF1A (PI3K signalling), PAK1 (RTK signalling), ID4 (TGF- signalling), DDB2 (p53 signalling), MDM2 (Han et al, 2022; Sanchez-Vega et al, 2018). Also, various growth factor receptors corresponding to different oncogenic signalling molecules like EGFR, PDGFR, and VEGFR are overexpressed in cases of GBM (Nakada et al, 2007). Mesenchymal-epithelial transition factor (c-Met) is a type of receptor tyrosine kinase that is needed for epithelial-to-mesenchymal transition (EMT) during developmental stages. c-Met shows abnormal expression in malig­nant gliomas like GBM which can be attributed to its aggressive malignancy. These growth factor receptors are involved in RTK type of paracrine/autocrine signalling. Some other RTKs unique to GBM are tyrosine kinase with immunoglobulin-like and EGF-like domains 1 (TIE1), discoidin domain receptor (DDR1), epoxide hydrolase (EPH1), and Axl. These play an important role in glioma invasion by suppressing the immune system. Recently, researcher identied ring-like contrasts which surround the tumours in MRI images and concluded that these contrasts indicate angiogenic changes during the progression of GBM. Along with VEGF and VEGFR, bronec­tin, tenascin-C, and vitronectin along with cathepsin B and matrix metalloprotein­ases (MMPs) are the key angiogenesis factors in glioblastoma. These prevent ECM degradation via the regulation of collagenase expression. Aberrant activation and overexpression tumour suppressor protein phosphatase and tensin homolog (PTEN), sphingosylphosphorylcholine (SPC), Rho kinases, and GPCRs of RTK/PI3K/Akt cascade (refer Figure 9.1) are prominent in cases of GBM (Sanchez-Vega et al, 2018). Integrins like β1 and β5 are linked with invasion and migration. RAC of the Rho GTPase family is involved in lamellipodial formation which is important in tumour migration. Identifying the mechanisms that contribute to the increase of oncogenic signalling and other pathways during glioma growth is critical. Such researches lead to the discovery of new prospective targets, better therapeutic regimen selection, and personalized medication.
Role of Phytopharmaceuticals
https://t.me/medicina_free
165
9.3 THERAPEUTIC APPROACHES TO GBM
Every year cancer claims millions of lives globally. Due to this, innovative and novel cancer therapeutic approaches are underway. Diagnostic technologies play an impor­tant role in the development of therapeutic strategies for cancer treatment. Surgery, radiation therapy, and chemotherapy are the most common treatment options whereas hormonal therapy and immunotherapy are some of the recent options. GBM is a type of brain cancer that is the cause of many hindrances during the development of a therapeutic approach. Some of them are:
• Intracranial malignancy.
• The danger of irreparable damage to the brain during surgery.
• The blood-brain barrier (BBB) prevents drugs from entering the brain.
• ATP-binding cassettes efux drugs from the BBB.
• Resistance of tumour cells to chemicals.
• Mutations in isocitrate dehydrogenases inhibit complement-mediated tumour repression.
Thus, the majority of the treatment options are focused on symptomatic relief (palliative treatment) and improving the patient’s life expectancy. While designing any treatment option for cancer, certain factors should be taken into consideration. These are tumour location, potential symptoms, potential benets, and associated limitations.
9.3.1 surgery
Surgery is one of the oldest yet the go-to options during the initial stages of can­cer. Chemotherapy and radiation therapy follow surgery if only surgery is not an option. The surgery is carried out to remove the tumour and some of the sur­rounding tissue to prevent metastasis. But it is hardly effective when the tumour has undergone aggressive metastasis. There are three stages to surgery. The rst is the diagnosis in which a biopsy is used to diagnose the type of cancer. The second is staging where the size, metastasis rate, and other parameters are evalu­ated. The last step is the surgical removal of the tumour by debulking or pal­liative surgery. Maximal safe resection is the most effective and safe surgical procedure in which the glioma is excised while ensuring maximum preservation of the surrounding neurological tissues. This can also be achieved by the use of 5-aminolevulinic which denes the tumour region for safe resection. But before this, some preoperative procedures like MRI, diffusion tensor imaging, and navi­gated transcranial magnetic stimulation need to be conducted to effectively map the surgical procedure.
9.3.2 rADiAtion therAPy
Radiation therapy is typically administered following surgery. Comparative studies have shown that combining surgery and radiation therapy is more benecial than