{"id":205466,"date":"2018-04-17T08:43:01","date_gmt":"2018-04-17T08:43:01","guid":{"rendered":"http:\/\/research.iitgn.ac.in\/ccbl\/research\/"},"modified":"2022-05-24T13:04:17","modified_gmt":"2022-05-24T13:04:17","slug":"research","status":"publish","type":"page","link":"https:\/\/labs.iitgn.ac.in\/ccbl\/research\/","title":{"rendered":"Research"},"content":{"rendered":"<p>[et_pb_section bb_built=&#8221;1&#8243; fullwidth=&#8221;on&#8221; _builder_version=&#8221;3.0.105&#8243; custom_padding=&#8221;0px|0px|0px|0px&#8221; next_background_color=&#8221;#000000&#8243;][et_pb_fullwidth_header title=&#8221;Sivapriya Kirubakaran &#8211; Cancer Chemical Biology Lab&#8221; subhead=&#8221;Indian Institute of Technology Gandhinagar&#8221; _builder_version=&#8221;3.10&#8243; background_color=&#8221;rgba(255, 255, 255, 0)&#8221; background_image=&#8221;http:\/\/research.iitgn.ac.in\/ccbl\/wp-content\/uploads\/2018\/04\/1.jpg&#8221; locked=&#8221;off&#8221;]<\/p>\n<p>&nbsp;<\/p>\n<p>[\/et_pb_fullwidth_header][et_pb_fullwidth_menu menu_id=&#8221;7&#8243; submenu_direction=&#8221;downwards&#8221; _builder_version=&#8221;3.10&#8243; menu_font=&#8221;|700|||||||&#8221; menu_text_color=&#8221;#0047e0&#8243; menu_font_size=&#8221;16px&#8221; text_orientation=&#8221;center&#8221;]<\/p>\n<p>&nbsp;<\/p>\n<p>[\/et_pb_fullwidth_menu][\/et_pb_section][et_pb_section bb_built=&#8221;1&#8243; _builder_version=&#8221;3.0.105&#8243; custom_padding=&#8221;0px|0px|0px|0px&#8221; prev_background_color=&#8221;#000000&#8243; next_background_color=&#8221;#000000&#8243;][et_pb_row _builder_version=&#8221;3.0.105&#8243;][et_pb_column type=&#8221;4_4&#8243;][et_pb_text _builder_version=&#8221;3.10&#8243; quote_font=&#8221;||||||||&#8221; use_background_color_gradient=&#8221;on&#8221;]<\/p>\n<h1 style=\"text-align: center;\"><span style=\"color: #f4f4f4;\"><strong>Our Research<\/strong><\/span><\/h1>\n<p>[\/et_pb_text][\/et_pb_column][\/et_pb_row][\/et_pb_section][et_pb_section bb_built=&#8221;1&#8243; admin_label=&#8221;Brewing Step&#8221; _builder_version=&#8221;3.0.85&#8243; custom_padding=&#8221;0px|0px|0px|0px&#8221; prev_background_color=&#8221;#000000&#8243; next_background_color=&#8221;#000000&#8243;][et_pb_row _builder_version=&#8221;3.0.105&#8243;][et_pb_column type=&#8221;4_4&#8243;][et_pb_text _builder_version=&#8221;3.10&#8243;]<\/p>\n<p style=\"text-align: justify;\"><span style=\"font-family: inherit; font-weight: normal; font-size: large; color: #000000;\">Cancer is considered to be a global health problem.\u00a0 The incidence and mortality rate of cancer is steadily increasing worldwide.\u00a0Moreover, the increasing resistance to the established anticancer drugs is of grave concern.<\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-size: large;\"><strong><span style=\"font-family: inherit; color: #000000;\">Protein kinases as the main therapeutic targets:<\/span><\/strong><\/span><\/p>\n<p style=\"text-align: justify;\"><span style=\"font-family: inherit; font-weight: normal; font-size: large; color: #000000;\">Protein kinases play a very significant role in various cellular functions such as cell signaling,\u00a0cell differentiation, and cell proliferation. Deregulation of the protein kinase activity has emerged as a major mechanism by which cancer cells evade normal physiological constraints on growth and survival. Such aberrant functions of the kinases in a cancer cell have highlighted them as one of the most successful families of drug targets. Our research group at IITGN focusses on the chemical biology of cancer-related protein kinases involved in the DNA damage response pathways which can be used as targets for the anti-cancer therapy.\u00a0 We use small molecule inhibitors approach to study these proteins so as to develop new age cancer therapeutics.<\/span><\/p>\n<p>[\/et_pb_text][\/et_pb_column][\/et_pb_row][et_pb_row _builder_version=&#8221;3.0.105&#8243;][et_pb_column type=&#8221;4_4&#8243;][et_pb_text _builder_version=&#8221;3.0.105&#8243;]<\/p>\n<p>&nbsp;<\/p>\n<p>[\/et_pb_text][et_pb_tabs _builder_version=&#8221;3.10&#8243; active_tab_background_color=&#8221;rgba(0,0,0,0)&#8221; inactive_tab_background_color=&#8221;rgba(0,0,0,0)&#8221; tab_text_color=&#8221;#12876f&#8221;][et_pb_tab title=&#8221;H.pylori infection &#8211; Stomach Cancer&#8221; _builder_version=&#8221;3.10&#8243; tab_text_color=&#8221;#e02b20&#8243; tab_font_size=&#8221;16px&#8221; use_background_color_gradient=&#8221;off&#8221; background_color_gradient_start=&#8221;#2b87da&#8221; background_color_gradient_end=&#8221;#29c4a9&#8243; background_color_gradient_type=&#8221;linear&#8221; background_color_gradient_direction=&#8221;180deg&#8221; background_color_gradient_direction_radial=&#8221;center&#8221; background_color_gradient_start_position=&#8221;0%&#8221; background_color_gradient_end_position=&#8221;100%&#8221; background_color_gradient_overlays_image=&#8221;off&#8221; parallax=&#8221;off&#8221; parallax_method=&#8221;on&#8221; background_size=&#8221;cover&#8221; background_position=&#8221;center&#8221; background_repeat=&#8221;no-repeat&#8221; background_blend=&#8221;normal&#8221; allow_player_pause=&#8221;off&#8221; background_video_pause_outside_viewport=&#8221;on&#8221; tab_font_size_tablet=&#8221;16px&#8221; tab_font_size_phone=&#8221;16px&#8221; tab_text_shadow_style=&#8221;none&#8221; body_text_shadow_style=&#8221;none&#8221;]<\/p>\n<p style=\"text-align: justify;\"><img loading=\"lazy\" decoding=\"async\" class=\"aligncenter wp-image-206296\" src=\"http:\/\/labs.iitgn.ac.in\/ccbl\/wp-content\/uploads\/2022\/05\/Coverpage-design-300x300.png\" alt=\"\" width=\"319\" height=\"319\" srcset=\"https:\/\/labs.iitgn.ac.in\/ccbl\/wp-content\/uploads\/2022\/05\/Coverpage-design-300x300.png 300w, https:\/\/labs.iitgn.ac.in\/ccbl\/wp-content\/uploads\/2022\/05\/Coverpage-design-150x150.png 150w, https:\/\/labs.iitgn.ac.in\/ccbl\/wp-content\/uploads\/2022\/05\/Coverpage-design-768x768.png 768w, https:\/\/labs.iitgn.ac.in\/ccbl\/wp-content\/uploads\/2022\/05\/Coverpage-design-1024x1024.png 1024w, https:\/\/labs.iitgn.ac.in\/ccbl\/wp-content\/uploads\/2022\/05\/Coverpage-design-1080x1080.png 1080w, https:\/\/labs.iitgn.ac.in\/ccbl\/wp-content\/uploads\/2022\/05\/Coverpage-design.png 1842w\" sizes=\"(max-width: 319px) 100vw, 319px\" \/><\/p>\n<p style=\"text-align: justify;\">Helicobacter pylori (\u200b<em>H. pylori\u200b<\/em>), a member of the \ud835\udf3a subdivision of Proteobacteria, is a\u00a0gram-negative spiral-shaped bacterium, and a well-known gastric colonizer. Worldwide, \u200bH. pylori \u200binfection affects almost 50% of the population, with the developing countries being affected the most. The clinical features of the infection include upper gastrointestinal disorders such as peptic ulcer, chronic gastritis, gastric mucosa-associated lymphoid tissue (MALT) lymphoma, and gastric cancer. As a result, \u200bH. pylori is identified as a Type I carcinogen. In\u00a0\u00a0addition, the extensive genetic heterogeneity shown by these species has resulted in the increased antibiotic resistance of several \u200bH. pylori \u200bstrains. Hence, it is essential to identify novel drug targets to treat the infection. Inosine-5\u2019-monophosphate dehydrogenase (IMPDH), an oxidoreductase enzyme involved in the de novo purine biosynthesis, has been recently identified as a potential drug target due to its vital role in bacterial growth and proliferation. The oxidation of inosine-5\u2019-monophosphate (IMP) to xanthosine-5\u2019-monophosphate (XMP) is catalyzed by IMPDH, resulting in the generation of guanine nucleotides which in turn serve as precursors for RNA and DNA. In fact, the inhibition of the bacterial IMPDH would result in depletion of the guanine nucleotide pool, hence hindering the growth and proliferation of \u200bH.pylori \u200bin the host. Moreover, studies that indicate the amplification of IMPDH in tumors and rapidly proliferating tissues establish the promising future of IMPDH as an anticancer target. The lab focuses on the design and synthesis of potential inhibitors of \u200bH. pylori \u200bIMPDH as a means to cure gastrointestinal disorders and in the prevention of gastric cancer in the long term. In addition, the effective combination of organic synthesis, molecular biology, \u200bin silico studies, and crystallization techniques nurture the enzyme inhibition studies, thus paving the way for path-breaking research in anticancer therapy.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"aligncenter\" style=\"display: block; margin-left: auto; margin-right: auto;\" src=\"http:\/\/labs.iitgn.ac.in\/ccbl\/wp-content\/uploads\/2020\/07\/IMPDH-2.jpg\" width=\"400\" height=\"535\" \/><\/p>\n<p>[\/et_pb_tab][et_pb_tab title=&#8221;\u00a0DNA Damage Sensing kinases &#8221; _builder_version=&#8221;3.10&#8243; tab_font=&#8221;||||||||&#8221; tab_text_color=&#8221;#e09900&#8243; tab_font_size=&#8221;16px&#8221;]<\/p>\n<p style=\"text-align: justify;\">Failure of cytotoxicity of DNA damage-inducing regimes such as radio- and chemotherapy in cancer treatment is mainly due to activation of DNA damage and response (DDR) pathway. DDR pathway is a complex network of the cellular process that maintains genomic stability in the normal cell.\u00a0\u00a0Defects in the DDR pathway in a cancer cell often predispose the mutagenic repair pathway that drives oncogenesis. Sensitizing cancer cells selectively through targeting enzymes in the DDR pathway in combination with radio- and chemotherapy in individual cancer cell types can bring synthetic lethality and also cancer-specific vulnerability.\u00a0Developing specific DDR inhibitors has remained a challenging task over the last few decades with significantly fewer drugs entered in clinical trials.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" style=\"display: block; margin-left: auto; margin-right: auto;\" src=\"http:\/\/labs.iitgn.ac.in\/ccbl\/wp-content\/uploads\/2020\/07\/ddr.png\" width=\"777\" height=\"398\" \/><\/p>\n<h4><span style=\"text-decoration: underline;\"><strong>ATR Kinase<\/strong><\/span><\/h4>\n<p>ATR gets activated in response to single-strand DNA breaks caused by UV irradiation\/ chemotherapy. Activation of ATR kinase leads to the phosphorylation of several cell cycle checkpoint kinases to arrest the cell cycle for the repair of damaged DNA. By targeting\u00a0 ATR kinase along with radiotherapy\/chemotherapy, one can achieve the selective targeting of cancer cells over normal cells. Also, this combinatorial approach proved to have reduced toxicity (organ failure)\u00a0 and resistance caused by drugs targeting DNA replication machinery.\u00a0 Torin 2 is an ATP competitive mTOR inhibitor (EC50 = 2nM\u00a0) also known to inhibit other PIKK family kinases (ATR, DNA-PKcs, ATM).\u00a0 As part of our kinase drug discovery research, we have designed few Torin2 analogs and synthesized them through multistep synthesis. All the synthesized compounds were characterized by NMR and mass analysis. The newly synthesized analogs were evaluated for their anti-cancer activity via CellTiter-Glo<sup>\u00ae<\/sup>assay. Additionally, compounds\u00a0<b>SPK 98<\/b>\u00a0and\u00a0<b>SPK 53<\/b>\u00a0showed significant inhibition for ATR and mTOR substrates, i.e., p-Chk1 Ser 317 and p70 S6K Thr 389, respectively. Compounds <b>SPK 98<\/b>\u00a0and\u00a0<b>SPK 53<\/b>\u00a0displayed promising anti-cancer activity with HCT-116 cell lines in the preliminary assay and looking further to perform preclinical studies.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" style=\"display: block; margin-left: auto; margin-right: auto;\" src=\"http:\/\/labs.iitgn.ac.in\/ccbl\/wp-content\/uploads\/2020\/07\/MOLECULES-2.jpg\" width=\"638\" height=\"442\" \/><\/p>\n<h4 style=\"text-align: justify;\"><span style=\"text-decoration: underline; color: #0c71c3;\"><strong>ATM Kinase<\/strong><\/span><\/h4>\n<p style=\"text-align: justify;\">The project aims at inhibiting ATM kinase, which arbitrates the repair of the DNA double-strand breaks.\u00a0Creating genomic instability by causing DNA strand breaks is used as a mode of treatment (certain\u00a0chemotherapeutics and radiotherapy) for cancer. Due to the elevated activity of DNA Damage and\u00a0Response (DDR) pathway in cancer cells, such treatments face resistance. Therefore, it is of utmost\u00a0importance to address this issue. We have designed and synthesized quinoline-3- carboxamide derivatives as ATM kinase inhibitors. The synthesised quinoline-3-carboxamide were tested against various cancer cell lines and showed significant toxicity. The\u00a0compounds were also 2-3 fold less toxic to normal cell line (293T). The synthesized compounds will\u00a0further be modified to enhance their toxicity against cancer cells.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" style=\"display: block; margin-left: auto; margin-right: auto;\" src=\"http:\/\/labs.iitgn.ac.in\/ccbl\/wp-content\/uploads\/2020\/07\/ATM-5.png\" width=\"835\" height=\"499\" \/><\/p>\n<p>&nbsp;<\/p>\n<h4><span style=\"text-decoration: underline; color: #c91a00;\"><strong>TLK1B Kinase<\/strong><\/span><\/h4>\n<p style=\"text-align: justify;\">Tousled like kinases (TLK) have been implicated in chromatin assembly, DNA repair, DNA replication, and transcription. They are expressed in most cell lines with the highest activity levels in\u00a0the S-phase of the cell cycle. TLK belongs to a class of serine-threonine kinases that phosphorylates\u00a0important DDR proteins like ASF1, RAD 9, NEK 1. TLK activity is attenuated during the DDR\u00a0activation via the ATM and Chk 1 kinase pathway, as the Chk 1 directly phosphorylates its\u00a0C-terminal residue. This suggests that TLK can be used as a target to hinder the DDR pathway\u00a0specific to cancer cells.\u00a0Our project mainly focuses on targeting TLK 1 for the inhibition of DDR. We have designed and\u00a0synthesized phenothiazine based derivatives as potential TLK inhibitors, which showed\u00a0promising results in in vitro and in vivo studies. Further, we also aim at modifying these\u00a0derivatives and exploring novel scaffolds for the target using in-silico studies, to achieve a better\u00a0inhibition towards TLK during biological studies.<\/p>\n<p>[\/et_pb_tab][et_pb_tab title=&#8221;Targeting RAS GTPase\u00a0&#8221; _builder_version=&#8221;3.10&#8243; tab_font=&#8221;||||||||&#8221; tab_text_color=&#8221;#f200ea&#8221; tab_font_size=&#8221;16px&#8221;]<\/p>\n<h3 style=\"text-align: justify;\"><span style=\"text-decoration: underline; color: #0c71c3;\"><strong>RAS GTPases<\/strong><\/span><\/h3>\n<p style=\"text-align: justify;\">\u00a0RAS mutations are known to be the most recurrent gain-of-function changes instigated in\u00a0patients with cancer. The RAS gene family is often mutated in most of the human cancers (9-30%) and the pursuit of inhibitors that bind to mutant RAS continues as a foremost target. Ras is a\u00a0small family of GTPases that control numerous cellular functions like cell proliferation, growth,\u00a0survival, gene expression, and is closely engaged in cancer pathogenesis. There are no specific\u00a0molecules reported targeting the same, although it is a known as oncogene for more than three\u00a0decades. In our recent study, new phosphate derivatives of Myo-inositol are designed and synthesized\u00a0to inhibit the oncogenic KRAS pathway in breast cancer cells, which has been validated by\u00a0cellular and theoretical studies. Our inspiration for designing potential RAS inhibitors was based\u00a0on the SML-8-73-1(first covalent inhibitor targeting KRAS G12C) to overcome its existing\u00a0limitations such as cell impermeability. It could offer a base for scientific and clinical\u00a0development of further modified or improved form of Myo-inositol phosphate derivatives for the\u00a0development of targeted therapy against oncogenic KRAS, which may contribute to the future\u00a0study for breast cancer.<\/p>\n<p><img decoding=\"async\" style=\"display: block; margin-left: auto; margin-right: auto;\" src=\"http:\/\/labs.iitgn.ac.in\/ccbl\/wp-content\/uploads\/2020\/07\/Graphical-representation-for-RAS.jpg\" \/><\/p>\n<p>[\/et_pb_tab][et_pb_tab title=&#8221;Validation of MDC1&#8243; _builder_version=&#8221;3.10&#8243;]<\/p>\n<h4 style=\"text-align: justify;\"><a class=\"et-fb-editable-element et-fb-editable-element__editing\" contenteditable=\"true\" href=\"http:\/\/labs.iitgn.ac.in\/ccbl\/research\/?et_fb=1#\" data-shortcode-id=\"2.1.0.1.2-1599636813616\" data-quickaccess-id=\"tab-tab\"><span style=\"text-decoration: underline; color: #2ea3f2;\"><strong>Validation of MDC1 as a therapeutic target<\/strong><\/span><\/a><\/h4>\n<p style=\"text-align: justify;\">Cisplatin, the most common chemotherapeutic drug for the treatment of advanced-stage cervical\u00a0cancers has limitations in terms of drugs resistance observed in patients partly due to functional DNA damage repair\u00a0(DDR) processes in the cell. Mediator of DNA damage checkpoint 1 (MDC1) is an important protein in the Ataxia telangiectasia mutated (ATM) mediated double-stranded DNA break (DSB) repair pathway. In this regard, we investigated\u00a0the efect of MDC1 change in expression on the cisplatin sensitivity in cervical cancer cells.<br \/>\nResults: Through modulation of MDC1 expression in the cervical cancer cell lines; Hela, SiHa, and Caski, we found\u00a0that all the three cell lines silenced for MDC1 exhibited higher sensitivity to cisplatin treatment with inefficiency in\u00a0accumulation of p \u03b3H2AX, Ser 139 foci, and increased accumulation of pChk2 Thr 68 at the damaged chromatin followed by enhanced apoptosis. Further, we observed the increased p53 Ser 15 phosphorylation in the MDC1 depleted\u00a0cells. Our studies suggest that MDC1 expression could be a key determinant in cervical cancer prognosis and its\u00a0depletion in combination with cisplatin has the potential to be explored for the sensitization of chemo-resistant cervical cancer cells.<\/p>\n<p>[\/et_pb_tab][\/et_pb_tabs][\/et_pb_column][\/et_pb_row][\/et_pb_section][et_pb_section bb_built=&#8221;1&#8243; admin_label=&#8221;SectionBrewing Step&#8221; _builder_version=&#8221;3.10&#8243; custom_padding=&#8221;0px|0px|50.5938px|0px&#8221; prev_background_color=&#8221;#000000&#8243; next_background_color=&#8221;#3c3d41&#8243;][\/et_pb_section][et_pb_section bb_built=&#8221;1&#8243; _builder_version=&#8221;3.0.74&#8243; background_color=&#8221;#3c3d41&#8243; custom_padding=&#8221;0px||0px|&#8221; custom_padding_tablet=&#8221;0px||0px|&#8221; transparent_background=&#8221;off&#8221; padding_mobile=&#8221;on&#8221; saved_tabs=&#8221;all&#8221; prev_background_color=&#8221;#ffffff&#8221; global_module=&#8221;3921&#8243;][et_pb_row global_parent=&#8221;3921&#8243; 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