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QSAR Models towards Cholinesterase Inhibitors for the Treatment of Alzheimer’s Disease
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KEY TERMS AND DEFINITIONS
AChE Enzyme: An enzyme that catalyses the hydrolysis of acetylcholine to acetate and choline.
Alzheimer’s Disease: It is a neurodegenerative disorder coined by German psychiatrist and neuro-
pathologist Alois Alzheimer in 1906.
GFA: Genetic function approximation is genetics based linear regression method of variable selection that combines Holland’s genetic algorithm with Friedman’s multivariate adaptive regression splines.
In Silico: A Latin type expression and define the work performed using computer simulation or computer modeling.
QSAR: Quantitative structure–activity relationship models are statistical regression equations used in the chemical, biological and engineering sciences. Model influences the chemical structure, descrip­tor, physico-chemical properties on different physical, chemical and biological endpoints, as well as in understanding the chemical processes.
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Chapter 11
Ligand- and Structure-
Based Drug Design of Non-
Steroidal Aromatase Inhibitors
(NSAIs) in Breast Cancer
Tarun Jha
Jadavpur University, India
Nilanajn Adhikari
Jadavpur University, India
ABSTRACT
Aromatase is a multienzyme complex overexpressed in breast cancer and responsible for estrogen pro­duction. It is the potential target for designing anti-breast cancer drugs. Ligand and Structure-Based Drug Designing approaches (LBDD and SBDD) are involved in development of active and more specific Nonsteroidal Aromatase Inhibitors (NSAIs). Different LBDD and SBDD approaches are presented here to understand their utility in designing novel NSAIs. It is observed that molecules should possess a five or six membered heterocyclic nitrogen containing ring to coordinate with heme portion of aromatase for inhibition. Moreover, one or two hydrogen bond acceptor features, hydrophobicity, and steric factors may play crucial roles for anti-aromatase activity. Electrostatic, van der Waals, and π-π interactions are other important factors that determine binding affinity of inhibitors. HQSAR, LDA-QSAR, GQSAR, CoMFA, and CoMSIA approaches, pharmacophore mapping followed by virtual screening, docking, and dynamic simulation may be effective approaches for designing new potent anti-aromatase molecules.
INTRODUCTION
Amit Kumar Halder
Jadavpur University, India
Achintya Saha
University of Calcutta, India
Breast cancer, one of the commonest form (accounting for 35% of all cancers) among different types of life threatening malignancies in females, is responsible for 20% of all cancer deaths (Bandi, 2010). More than 5,22,000 women across the world died as a result of breast cancer (May, 2014). The maxi­mum incidence of breast cancer is observed in the Western Europe, North America, Australia and New
DOI: 10.4018/978-1-4666-8136-1.ch011
Copyright © 2015, IGI Global. Copying or distributing in print or electronic forms without written permission of IGI Global is prohibited.
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Ligand- and Structure-Based Drug Design of NSAIs in Breast Cancer
Zealand. The incidence of breast cancer is seven fold higher in developing nations. Belgium has the age-standardized highest rate of incidence (more than 110 cases per 1,00,000 women per annum). Apart from that, among top 12 countries, nine belong to Western European, but the Bahamas, Barbados and the United States of America are also in the top ranking. The 12 lowest incidence countries belong to mainly sub-Saharan Africa, South Asia and the far East, those suffer from poverty (May, 2014). The distribution pattern of the age-standardized mortality rate is different across the world. Belgium has the highest mortality followed by the Republic of Ireland with the highest rate of diagnosis but they are out­ranked by Fiji, Bahamas, Nigeria and Pakistan. Though the mortality is relatively low in low-incidence countries but the mortality rate and probability are higher than the high-incidence countries due to social and cultural influence, stage of presentation and the standards of health care. Due to the high incidence rate, breast cancer ranks top among women’s health concerns. Despite the advancement of new preven­tive strategies against breast cancer consideration, the incidence of breast cancer has remained the same since 2005 (Arumugam et al., 2014; Siegel et al., 2012). Breast carcinoma is most frequently diagnosed cancer in women apart from cancer of skin. Approximately 70% of the breast cancers are diagnosed in postmenopausal women (Howlader et al., 2014). It ranks second in tumor-related deaths after lung cancer (Muftuoglu & Mustata, 2010). It is predicted that one in eight American women is susceptible to develop invasive breast cancer in their lifetime (American Cancer Society Cancer Facts & Figures, 2013; Brueggemeier, Hackett, & Diaz-Cruz, 2005).
Sex hormones play crucial roles like growth regulation, maturation and reproduction in living animals. Sex hormones are composed of a steroidal cyclopentanoperhydrophenanthrene nucleus. Steroidal hormones are involved in regulation of different physiological effects, like muscle and hair growth, fertility, water retention and dilatation of the capillary vessels as well as sebaceous gland activity (Proteau, 2011; Davis et al., 2004; Morales et al., 2004). Estrogen is a prominent regulator of cell proliferation in the tumorogenesis of hormone-dependent breast cancer and other tumors. The exact mechanisms of this incidence are still hypothesized. Estrogen metabolites like reactive quinones may directly interact with DNA. It causes mutations that are responsible for these proliferative effects (Miller, 2003). Nearly, two-thirds of breast tumors are hormone-dependent and require estrogens to grow (Brueggemeier, Hackett, & Diaz-Cruz, 2005; Howell, 2005; Muti, Rogan, & Cavalieri, 2006). This phenomenon demands application of an endocrine therapy with a more favorable activity profile and less adverse effects compared to unspecific chemotherapy. More than 100 years ago, Beatson reported that ovariectomy in premenopausal women with breast cancer can induce tumor remission (Beatson, 1896). By knowing the advantage of lowering estrogen level in breast cancer, antihormonal therapy led to the development of new drug candidates. As high serum levels of estrogen is seen in progression of breast cancer, two pharmacological strategies have been employed successfully to control breast cancer (Murthy, Rao, & Sastry, 2004). Drugs either act through estrogen receptor (ER) modulation (Ariazi et al., 2006) or interfere with the biosyntheses of steroidal hormones by inhibit­ing the enzyme controlling the interconversion from androgenic precursors, i.e., aromatase inhibitors (AIs) (Brueggemeier, Hackett, & Diaz-Cruz, 2005). Considerable research work has been devoted to the study of this aromatase enzyme. This helps to develop potent and selective agents that are able to interfere with enzymatic action. Selective estrogen receptor modulators (SERMs) and aromatase inhibitors (AIs) are successfully utilized as therapeutically important weapons in the battle against breast cancer deaths (Pasqualini, 2004). Several classes of steroidal and nonsteroidal aromatase inhibi­tors are developed (Brodie, Sabnis, & Jelovac, 2006; Neves et al., 2009; Colozza et al., 2008; Dutta & Pant, 2008; Eisen et al., 2008; Gobbi et al., 2008; Jackson et al., 2008; Osborne & Tripathy, 2005;
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Osborne & Schiff, 2005; Recanatini & Cavalli, 1998; Recanatini, Cavalli, & Valenti, 2002; Spinelli et al., 2008). Steroidal aromatase inhibitors (Figure 1) like formaestane (1) and exemestane (2), and nonsteroidal aromatase inhibitors, e.g., aminoglutethimide (3), fadrozole (4), anastrozole (5), letrozole (6) and verozole (7) were evaluated successfully in clinical trials (Miller, 2003; Recanatini, Cavalli, & Valenti, 2002).
Steroidal aromatase inhibitors (SAIs) are analogs of androgenic substrates. These inhibit aromatase irreversibly by either competitive or mechanism-based way. Competitive inhibitors bind covalently to the aromatase enzyme, whereas mechanism-based inhibitors, also called suicide inhibitors are converted into a reactive intermediate which covalently binds with the enzyme and thereby perma­nently inactivates it. The enzyme is often destabilized by this process and the rate of degradation by the intracellular proteosome is increased (Miller et al., 2008; Hong et al., 2007). On the other
Figure 1. Aromatase inhibitors (AIs) evaluated in clinical trials
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Ligand- and Structure-Based Drug Design of NSAIs in Breast Cancer
hand, nonsteroidal aromatase inhibitors (NSAIs) bind noncovalently to the aromatase enzyme. These block the active site and reversibly inhibit the enzyme (Brueggemeier, Hackett, & Diaz-Cruz, 2005; Hong et al., 2007). The NSAIs are divided according to the order of their discovery. Currently, 3
rd
generation of triazole derivatives is approved as front-line therapy for early and advanced cases of breast cancer in postmenopausal women (Hong et al., 2007; Neves et al., 2009). However, as far as the adverse effects are concerned in both steroidal and nonsteroidal AIs, these vary from mild to severe and short term to long term. The SAIs produce androgenic side effects where different other hormone-dependent physiological systems are disturbed due to lack of inhibitor specificity (Geisler & Lonning, 2005). Prolonged estrogen deprivation may lead to osteoporosis and infertility as well as other types of cancers (Hong et al., 2007). Hence, benefits of these SAIs may be suppressed due to life-threatening adverse effects. Many patients are compelled to discontinue the use of this type of inhibitors. Thus, more selective and less toxic aromatase inhibitors are needed. These are required as the stability, efficiency and sensitivity to different classes of AIs may vary from patient to patient due to mutations of intratumoral aromatase (Miller et al., 2008). The major advantage of NSAIs is devoid of different steroidal adverse effects shown by steroidal AIs.
Drug design, development and discovery are expensive as well as time consuming processes. Traditionally, drug discovery relies on synthesis and screening of large number of compounds to identify a potential lead. Over the decades, there is an increased effort to apply computational ap­proaches to combine both chemical and biological spaces in order to streamline drug design, optimi­zation, discovery and development (Kapetanovic, 2008). Computational methods may play crucial roles in understanding the specific molecular recognition events of the target macromolecule with candidate hits (Shaikh et al., 2007). Rational drug design (RDD) methods may reduce time and cost involved in drug development process in comparison to traditional drug discovery methods. The RDD methods are utilized to design new inhibitors as well as for optimizing the pharmacokinetic and toxicity profiles of lead molecules. The RDD approaches (Figure 2) can be categorized in two types, i.e., ligand based drug design (LBDD) and structure based drug design (SBDD) (Aparoy, Reddy, & Reddanna, 2012).
Though a limited number of molecular modeling studies for designing the SAIs (Numazawa, Shelangouski, & Nagasaka, 2000; Beger et al., 2001; Numazawa et al., 2002; Polanski & Gieleciak, 2003; Murthy et al., 2006; Dai et al., 2010; Roy & Roy, 2010a) and NSAIs (Muftuoglu & Mustata, 2010; Recanatini & Cavalli, 1998; Furet et al., 1993; Nagy, Tokarski, & Hopfinger, 1994; Cavalli et al., 2000; Chen et al., 2004; Leonetti et al., 2004; Cavalli et al., 2005; Schuster et al., 2006; Nagar et al., 2008; Castellano et al., 2008; Nagar et al., 2009; Karkola & Wahala, 2009; Petkov et al., 2009; Nagar & Saha, 2010a; Nagar & Saha, 2010b; Nagar & Saha, 2010c; Roy & Roy, 2010b; Sun et al., 2010; Froufe, Abreu, & Ferreira, 2011; Narayana et al., 2012; Nantasenamat et al., 2013) were performed, structure based as well as ligand based molecular modeling techniques can be used to identify or discover new potential leads with less adverse effects in future that may be beneficial as far as the breast cancer mortality rate is concerned. The chapter highlights the LBDD as well as SBDD studies of NSAIs that can be utilized to design novel anti-aromatase leads useful for the treatment of breast carcinomas. Before discussing the various modeling strategies, the overview of breast cancer and its treatment, and chemistry and functionalities of aromatase enzyme for develop­ment of anti-aromatase drugs against breast cancer have been highlighted.
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Figure 2. Rational drug design approaches
BREAST CANCER AND ITS TREATMENT
Various factors, such as age, family history, early menarche, late menopause, postmenopausal obesity, use of estrogen and progestin menopausal hormones, alcohol and physical inactivity may be responsible for developing breast cancers. Inheritance of an inactivating mutation in one of the familial breast can­cer genes, like BRCA1, BRCA2, CHEK2, p53 and ATM may be the strongest risk factor for the breast cancer, contributing 5% of the breast cancer cases. The second highest risk factor is age. Three-quarter of breast cancer cases (< 5%) is observed in postmenopausal woman less than 40 years of age. But the highest incidence of mortality is observed in women between the age of 34 and 54. The other risk fac­tors include exposure of estrogens, absence of lactation, hormonal therapy and use of oral contraceptive pills (May, 2014; Westley and May, 2013; McCullough et al., 2012; Allen et al., 2009). Nevertheless,
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the risk of breast cancer may be observed in diabetic conditions like high circulating insulin-like growth factor-1 (IGF-1) and low serum insulin-like growth factor binding protein 3, though exercise may reduce the risk of breast cancer. The chance of developing invasive breast cancer is strongly influenced by the extent of spread of cancer when it is first diagnosed. The American Joint Committee on Cancer (AJCC) classified tumors on the basis of tumor size and the propagation within the breast and nearby organs (T) and involvement of lymph node (N) as well as the presence or absence of different metastases in distant organs (M) (AJCC Cancer Staging Manual, 2002). If T, N and M are determined, stages of I, II, III, and IV are assigned, where stage I is an early stage and stage IV is the most advanced.
The early detection of breast cancer uses mammography, clinical breast examination (CBE) and magnetic resonance imaging (MRI). Mammography may be able to detect about 80-90% of the breast cancer (Michaelson, Satija, & Moore, 2002). For women aged 40 and above, annual CBE may be an important complement to mammography. A small percentage of breast cancers may be missed during mammography can be detected in CBE. The shape, texture, location of lumps and if any skin color changes are observed during CBE. In MRI, magnetic fields are used instead of X-ray mammography. It gener­ates detailed cross-sectional images of breast tissue. As far as the breast cancer treatment is concerned, it includes both local and systemic therapy to get rid of tumor as completely as possible and to prevent its recurrence. Local therapy includes surgery and radiation therapy. In lumpectomy, only cancerous tissues along with some portion of normal tissues are removed. In mastectomy, removal of complete breast occurs. Lumpectomy followed by radiation may affect the same expected long time survival rate as in mastectomy (Fisher, Anderson, & Bryant, 2002). In both lumpectomy and mastectomy, removal of axillary lymph nodes is done to determine the spreading beyond breast. The presence of cancerous lesions in lymph node helps to determine subsequent therapy. Sentinel lymph node biopsy reduces the need for full axillary lymph node dissections in majority of women with no evidence of lymph node en­largement before therapy (Lyman, Giuliano, & Somerfield, 2005). Radiation therapy destroys cancerous cells after or before surgery in the breast, chest wall and or underarm area (Early Breast Cancer Trial­ists’ Collaborative group, 2000). Radiation therapy depends on the type and stage as well as location of the tumor being treated. Apart from the local therapy, systemic therapy includes biological therapy and chemotherapy as well as hormone therapy. Systemic treatment with anticancer drugs prior to surgery is a neoadjuvant therapy. This helps in shrinkage of tumor which relieves the stress of surgical removal. In adjuvant therapy, a systemic treatment is given to the patients after surgery. This therapy is more effective in terms of survival, disease progression and distant recurrence (Mauri, Pavlidis, & Loannidis, 2005).
Approximately, about 15-30% of breast cancers are related to overproduction of the growth promoting protein ‘Human Epidermal Growth Factor Receptor 2’ (HER2/neu). It is also known as ErbB2 protein. It gives higher aggressiveness in breast cancers. It belongs to ErbB2 protein family or epidermal growth factor receptor (EGFR) family. It is also known as CD340 (cluster of differentiation 340) and p185. It is encoded by ErbB2 gene (Gligorov & Lotz, 2008). Overexpression of this receptor is associated generally with increased disease recurrence as well as worse prognosis. Since the prognostic role of the receptor and its ability to predict response against trastuzumab (herceptin), breast tumors are checked regularly for overexpression of HER2/neu [since the oncogene ‘neu’ is derived from a rodent gliboblastoma cell line (a neural tumor), it is termed as ‘neu’]. HER2 is named on the basis of its similar structure to hu­man epidermal growth factor receptor 1 (HER1). Similarly, ErbB2 is termed for its similarity to ErbB (avian erythroblastosis oncogene B). It is found to encode EGFR. Gene cloning study showed that neu and HER2 as well as ErbB2 are same protein. The HER2 is co-localized and therefore, co-amplified with the gene GRB7. The GRB7 is a proto-oncogene found active in breast, gastric and esophageal
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