Derivatives of imidazo[1,2-a]pyridine with Anti-inflammatory activity

WO2025003545A8PCT designated stage expired Publication Date: 2025-12-04UNIV DE VALENCIA +4
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Patent Information

Application Number
PCT/ES2024/070403
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-06-27
Filing Date
2024-06-26
Publication Date
2025-12-04

AI Technical Summary

Technical Problem

Current anti-inflammatory drugs face challenges such as gastric and cardiac side effects, and there is a need for compounds that can selectively inhibit the TGFβ signaling pathway to address inflammatory and fibrotic diseases without disrupting normal homeostasis.

Method used

Development of imidazo[1,2-a]pyridine derivatives with specific structural modifications that inhibit the ALK5 tyrosine kinase, a key component of the TGFβ receptor, using Suzuki coupling reactions and heterocyclization, to exert anti-inflammatory and antifibrotic effects.

Benefits of technology

These derivatives demonstrate potent anti-inflammatory activity in vitro and in vivo, reducing inflammation and fibrosis, and show promise in treating conditions like acute respiratory distress syndrome, cancer, and fibrotic diseases without the side effects of conventional drugs.

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Abstract

The present invention relates to the chemical synthesis and production of compounds derived from imidazo[1,2-a]pyridine of formula I, wherein R2, R3, R5, R6 and R7 have the meanings indicated in the description; a method for obtaining same; and the therapeutic use thereof as a pharmaceutical composition for anti-inflammatory use in vitro and in vivo in diseases involving inflammatory and pro-fibrotic processes.
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Description

[0001] IMIDAZO[1,2-A]PYRIDINE DERIVATIVES WITH ANTI-INFLAMMATORY ACTIVITY

[0002] FIELD OF INVENTION

[0003] The present invention is related to the production of synthetic chemical products for cosmetic, nutraceutical and therapeutic applications (Biomedical sector).

[0004] It is part of the field of preparation of new compounds through a chemical synthesis process of imidazo[1,2-a] pyridine derivatives by Suzuki coupling reaction and heterocyclization, with potent anti-inflammatory activity in vitro in cell cultures and in vivo in mouse models.

[0005] BACKGROUND OF THE INVENTION

[0006] Inflammation is a normal response of the immune system to infection. However, when allowed to continue unchecked, it can result in autoimmune or autoinflammatory disorders, neurodegenerative diseases, or even cancer. The growing understanding that chronic inflammation is crucial in many diseases opens up new avenues for treatment.

[0007] A variety of safe and effective anti-inflammatory agents are currently available, including aspirin and other nonsteroidal anti-inflammatory drugs (NSAIDs), with many more drugs in development. An effective anti-inflammatory drug should be able to inhibit the development of inflammation without interfering with normal homeostasis. Typically, anti-inflammatory drugs inhibit cyclooxygenases (COX), which are involved in the biosynthesis of inflammation-promoting prostaglandins. Conventional NSAIDs are associated with gastric and renal side effects, as they inhibit both constitutive COX-1 and inducible COX-2. Most selective COX-2 inhibitors (COXIBs) lack gastric side effects but are associated with cardiac side effects with long-term use.

[0008] On the other hand, excess reactive oxygen species (ROS) in the body cause oxidative stress, which damages p53 protein and poly (ADP-ribosyl)ation (PARP), which, in turn, triggers protease (calpain) activation, protein degradation, and impaired mitochondrial functions, reducing ATP levels and ultimately leading to cell necrosis. ROS dysregulation can cause cellular dysfunction resulting in the development of many diseases such as cancers, cardiovascular disease, stroke, and ultimately death.

[0009] Current approaches to overcome inflammation include the use of immunoselective anti-inflammatory derivatives, selective glucocorticoid receptor agonists, statins, histone deacetylase inhibitors, PPAR agonists, resolvins and TNFα proteins and inhibitors, among others.

[0010] Transforming growth factor beta (TGFP) is a crucial player in immune system homeostasis, involved in, among others, inflammatory cell migration, growth inhibition, invasion, epithelial-mesenchymal transition (EMT), extracellular matrix (ECM) remodeling, and immunosuppression. However, although normally dynamically regulated and involved in maintaining tissue homeostasis, TGFβ is often chronically overexpressed in various pathologies, such as cancer, fibrosis, and inflammation. The TGFβ signaling pathway has emerged as a popular target for drug development.

[0011] Furthermore, TGF-β is the most potent profibrogenic cytokine, and its expression is increased in almost all fibrotic diseases. There is growing evidence that reactive oxygen species (ROS) modulate TGF-β signaling through various pathways. In particular, TGF-β increases ROS production and suppresses antioxidant enzymes, leading to a redox imbalance. ROS, in turn, induce / activate TGF-β and mediate many of the fibrogenic effects of TGF-β.

[0012] In this regard, compounds that selectively inhibit TGFβ receptors could have the potential to inhibit the inflammatory response and be developed for therapeutic applications in the treatment of fibrosis, late-stage carcinogenesis, atherosclerosis, and excessive scarring diseases in which TGFβ activity has been implicated in the signaling pathway. Inhibition of TGFβ can reduce perivascular inflammation, thus slowing disease progression. In this regard, deficiency of its receptor ALK5 can inhibit macrophage-mediated inflammation. In turn, the TGFβ / ALK5 pathway has been proposed as a therapeutic target capable of restoring sensitivity to the anti-inflammatory activity of corticosteroids in inflammation caused by respiratory viral infections. In most cells, TGFβ signals through the combination of TGFβR-II and ALK5.

[0013] ALK5 is a tyrosine kinase that is the type I receptor for tumor growth factor beta (TGFp-l), and has been described as a mediator in the inflammatory response, inducing fibrosis of various origins, as well as promoting cell survival, migration, differentiation and proliferation, related to various pathologies, including tumor processes. In fact, the inhibition of Alk5 has a clear inhibitory effect on the inflammatory response, promoting the anti-inflammatory response in human macrophages. Ling LE, Lee WC refers to the inhibition of Alk5. Tgf-beta type I receptor (Alk5) kinase inhibitors in oncology. Curr Pharm Biotechnol. 2011 Dec;12(12):2190-202. https: / / doi.org / 10.2174 / 138920111798808257.

[0014] On the other hand, targeting the TGF-β / Smad signaling pathway has recently been described to attenuate the formation of keloid and hypertrophic scars. Aberrant scar formation, including keloid and hypertrophic scars, is associated with a disorganized pathological wound healing process and chronic inflammation. The TGF-β / Smad signaling pathway is the most canonical pathway through which collagen formation in fibroblasts and myofibroblasts is regulated. In recent years, several therapeutic strategies targeting the TGF-β / Smad signaling pathway have been developed to attenuate abnormal scar formation in the skin.

[0015] Very recently, the possible treatment of COVID-19 with TGF-β blockade has also been described (Chen et al., 2020; Ferreira-Gomes et al., 2021). The main cause of death in infected patients is severe acute respiratory distress syndrome (ARDS) caused by the SARS-CoV-2 virus. The syndrome is attributed to largely uncontrolled inflammatory responses characterized by a "cytokine storm," edema, and fibrosis in the lungs in the final stages. This leads to functional failure of the lungs and death of patients.

[0016] Acute respiratory distress syndrome (ARDS) is a form of non-cardiogenic pulmonary edema caused by alveolar injury secondary to an intense inflammatory process in the lungs. Despite its high incidence, ARDS has no specific treatment beyond targeting the source (antibiotics in cases of bacterial infection), minimizing potentially harmful ventilation, and avoiding a positive fluid balance. Lung fibrosis may be primarily due to transforming growth factor beta (TGF-β). Furthermore, TGF-β is also involved in fluid homeostasis in the lung. The cytokine storm and pathogenesis of COVID-19 have been proposed to be a consequence of the unbalanced cytokine network resulting from increased biological activity of transforming growth factor beta (TGF-β) (Shen et al., 2021).The sudden and uncontrolled increase in active TGF-β (possibly with the help of some proinflammatory cytokines such as TNFα, IL-6, and IL-1β) inevitably results in rapid and massive edema and fibrosis that remodel and eventually block the airways. Furthermore, TGFβ, by internalizing the epithelial sodium channel (ENaC), also suppresses the antioxidant system, and reactive oxygen species play an important role in lung injury, which is elevated during SARS-CoV-2 infection. Given all these features, blocking transforming growth factor beta (TGFP) is suggested as a possible immunotherapy for severe COVID-19.

[0017] Recently, the anti-inflammatory evaluation of imidazo[1,2-a]pyridinecarboxylic acid derivatives has been described (Márquez-Flores et al, 2012), 2,3,6-substituted imidazo[1,2-a]pyridine derivatives with in vitro anti-inflammatory activity measured by the bovine serum albumin (BSA) protein denaturation assay (Budumuru et al, 2019), and 7-aryl-imidazo[1,2-a]pyridine-3-ylquinoline as ALK inhibitors (Engers et al., 2020).

[0018] Galunisertib and Vactosertib are inhibitors of the TGF-β and / or ALK5 pathway that have shown a good safety profile in Phase I trials and are being considered as potential antitumor agents due to the involvement of the aforementioned pathway in cell proliferation and migration.

[0019] WO 2013147711 relates to compounds among which are certain imidazopyridines that act as inhibitors of the kinases MNK2a, MNK2b, MNK1a and MNK1 b, which interact with MAP kinase, to pharmaceutical compositions comprising these compounds and to the use of the compounds for the preparation of a medicament for the prophylaxis and treatment of diseases, such as proliferative diseases, for example, cancer, inflammatory diseases, Alzheimer's disease. The compounds disclosed by WO2013147711 are distinct from those prepared in the present invention. Furthermore, there is no evidence in WO2013147711 that shows that said compounds have inhibitory capacity of the tyrosine kinase Alk5, which is the receptor I of the transforming growth factor or TGFp, which is the basis of the activity of the compounds of the present invention.

[0020] W02008014219 discloses a method for inhibiting the activity / function of PB kinases using thiozolidinedione derivatives. Among the disclosed compounds are some refers to compounds among which are certain imidazo-pyridines that act as inhibitors. They are said to be useful for treating selected pathological conditions such as autoimmune disorders, inflammatory diseases or lung injuries. The compounds disclosed by W02008014219 are distinct from those prepared in the present invention. Furthermore, there is no evidence in W02008014219 that shows that said compounds have inhibitory capacity against the tyrosine kinase Alk5, which is the receptor I of the transforming growth factor or TGFp, which is the basis of the activity of the compounds of the present invention.

[0021] US2004122044 discloses pharmaceutical formulations with compounds having an imidazo[1,2-a]-pyridin-3-yl-amide skeleton or amine compounds as active ingredients for inhibiting nitric oxide synthase. Some treatments for diseases that can be treated with said compounds are also mentioned. However, the compounds disclosed by US2004122044 are different from those prepared in the present invention. Furthermore, it only shows examples of anti NO synthase activity, but there is no evidence in US2004122044 that shows that said compounds have activity for the particular diseases or problems for which the compounds of the present invention are intended.

[0022] WO2019099336 relates to indole-derived compounds, among which are certain imidazopyridines, useful in the treatment of autoimmune and inflammatory diseases. However, the disclosed imidazopyridines do not in any case coincide with compounds of the present invention, since according to formula (I) of the main claim, when the substituent at positions 6 or 7 of the imidazopyridine skeleton is a heterocycle, said heterocycle is never substituted with a piperidine. Therefore, the activity in the medical field does not have to be the same, or even similar to that of the compounds of the present invention. In particular, WO2019099336 does not demonstrate that the disclosed indoles have the capacity to inhibit the tyrosine kinase Alk5, which is the receptor I of the transforming growth factor or TGFp, which is the basis of the activity of the compounds of the present invention. The article RODRIGUEZ, JC et al., “Microwave-assisted synthesis and luminescent activity of imidazo[1,2a]pyridine derivatives”; Journal of Heterocyclic Chemistry, 2020, discloses a series of compounds potentially useful in the field of medicine. These compounds are distinct from those obtained in the present invention, and this document does not demonstrate any medical or cosmetic activity for the compounds shown.

[0023] The compounds of the invention utilize the inhibition of ALK5, a member of the TGFβ receptor family, as an anti-inflammatory strategy, capable of preventing fibrotic events, among others (Nolte and Margadant, 2020). These compounds are useful in the treatment of cancer, lung diseases, fibrotic diseases, prevention of keloid and hypertrophic scar formation, and as a treatment for severe COVID-19.

[0024] The compounds of the invention have the chemical structure of a planar aromatic imidazo[1,2-a]pyridine skeleton functionalized at different positions of this heterocyclic skeleton, especially highlighting those derivatives substituted at C-7 with an aromatic heterocyclic system. Some of them were prepared from 7-bromoimidazo[1,2-a]pyridine and (hetero)arylboronic acids by Suzuki couplings. The imidazo[1,2-a]pyridine skeleton is known as a privileged structure since it is present in many commercial drugs such as Zolpidem, Olprinone, Soraprazan and many other compounds that are currently in different stages of biological testing and preclinical evaluation, showing multiple therapeutic applications.

[0025] The compounds of the invention are compounds based on structures with inhibitory activity of the tyrosine kinase Alk5, which is the receptor I of the transforming growth factor or TGFp.

[0026] They presented potent anti-inflammatory activity both in vitro (on cultured human macrophages and cultured human macrophages) and in vivo in an animal model of acute lung injury, as well as an antifibrotic effect in a murine model.

[0027] References:

[0028] Chen et al., 2020: Chen W. A potential treatment of COVID-19 with TGF-p blockade. Int J Biol Sci. 2020 Apr21;16(11):1954-1955.

[0029] Ferreira-Gomes et al., 2021 : Ferreira-Gomes M, Kruglov A, Durek P, Heinrich F, Tizian C, Heinz GA, Pascual-Reguant A, Du W, Mothes R, Fan C, Frischbutter S, Habenicht K, Budzinski L, Ninnemann J, Jani PK, Guerra GM, Lehmann K, Matz M, Ostendorf L, Heiberger L, Chang HD, Bauherr S, Maurer M, Schónrich G, Raftery M, Kallinich T, Mall MA, Angermair S, Treskatsch S, Dórner T, Corman VM, Diefenbach A, Volk HD, Elezkurtaj S, Winkler TH, Dong J, Hauser AE, Radbruch H, Witkowski M, Melchers F, Radbruch A, Mashreghi MF. SARS-CoV-2 in severe COVID-19 induces a TGF-p-dominated chronic immune response that does not target itself. Nat Commun. 2021 Mar 30; 12(1 ): 1961. https: / / doi.Org / 10.1038 / s41467-021 -22210-3.

[0030] Shen et al., 2021: Shen WX, Luo RC, Wang JQ, Chen ZS. Features of Cytokine Storm Identified by Distinguishing Clinical Manifestations in COVID-19. Front Public Health. 2021 May 24;9:671788. https: / / doi.org / 10.3389 / fpubh.2021.671788.

[0031] Márquez-Flores et al., 2012: Márquez-Flores YK, Campos-Aldrete ME, Sagado-Zamora H, Correa-Basurto J, Meléndez-Camargo ME. Acute and chronic anti-inflammatory evaluation of imidazo[1,2-A]pyridine carboxylic acid derivatives and docking analysis. Medicinal Chemistry Research, 2012; 3491-3498. https: / / doi.org / 10.1007 / s00044-011 -9870-3.

[0032] Budumuru et al.; 2019: Budumuru P, Golagani S, and Pushpanjali B. Microwave- assisted synthesis of imidazo[1,2-a]pyridine derivatives and their anti-inflammatory activity IJPSR, 2019; 10(3): 1172-1179 http: / / dx.doi.Org / 10.13040 / I JPSR.0975-8232.10(3).1172-79

[0033] Engers et al., 2020: Engers DW, Bollinger SR, Felts AS, Vadukoot AK, Williams CH, Blobaum AL, Lindsley CW, Hong CC, Hopkins CR. Discovery, synthesis and characterization of a series of 7-aryl-imidazo[1,2-a]pyridine-3-ylquinolines as activin-like kinase (ALK) inhibitors. Bioorg Med Chem Lett. 2020 Sep 15;30(18):127418. https: / / doi.Org / 10.1016 / j.bmcl.2020.127418

[0034] Nolte and Margadant et al., 2020: Nolte M, Margadant C. Controlling Immunity and

[0035] Inflammation through Integrin-Dependent Regulation of TGF-p. Trends Cell Biol. 2020

[0036] Jan;30(1):49-59. https: / / doi.Org / 10.1016 / j.tcb.2019.10.002 DESCRIPTION OF THE INVENTION

[0037] The present invention relates to a compound of formula I:

[0038] I or a pharmaceutically acceptable salt thereof, wherein:

[0039] R 2represents H; aryl, where the aryl group may be unsubstituted or may be substituted with alkyl groups of 1 to 5 carbon atoms, or substituted with haloalkyl (such as -CF3), or substituted with an alkoxy group of 1 to 5 carbon atoms, such as methoxy, ethoxy, propyl, butanyl,

[0040] R 3 represents H, halogen (F, Cl, Br, I); haloalkyl; alkoxycarbonyl of 2 to 5 carbon atoms; amino; aryl or heteroaryl, where the aryl and heteroaryl groups may be unsubstituted or may be substituted by alkyl groups of 1 to 5 carbon atoms or by one or more alkoxycarbonyl groups of 2 to 5 carbon atoms (such as ethoxycarbonyl),

[0041] R 5represents H; alkenyl of 2 to 10 carbon atoms; alkoxycarbonyl of 2 to 5 carbon atoms; nitro; carboxyl; alkyl of 1 to 5 carbon atoms unsubstituted or substituted by one or more hydroxy groups, preferably substituted by a hydroxy group; by an N-(3-methylene-2-oxoindole-5-yl)-3-(piperidine-1-yl)propanamide) or carbaldehyde group,

[0042] R 6represents a hydrogen atom (H); an unsubstituted alkyl group of 1 to 5 carbon atoms; an alkyl group of 1 to 5 carbon atoms substituted by one or more hydroxy groups, preferably substituted by one or more hydroxy groups, such as hydroxymethyl; an alkoxyl group of 1 to 5 carbon atoms; halogen (F, Cl, Br, I); an alkoxycarbonyl group (-O-(C=O)-R) where R has 1 to 3 carbon atoms, such as methoxycarbonyl, ethoxycarbonyl, propoxycarbonyl; a nitro group; an alkenyl group of 2 to 10 carbon atoms, such as 3, 4, 5, 6, 7, 8, 9 or 10 carbon atoms - preferably 3 to 10 carbon atoms, unsubstituted or substituted, for example, by an aryl group, such as phenyl; alkenyl of 2 carbon atoms substituted by phenyl (styryl); aryl, where the aryl group may be unsubstituted or may be substituted by one or more hydroxyl groups (e.g., substituted by a hydroxyl), or substituted by one or more methoxyl groups;heteroaryl, such as furanyl, thiophenyl, pyrrolyl or pyridinyl; or heteroaryl where the heteroaryl group is selected from dibenzothiophenyl, a group of formula II, a group of formula III:; where D, B, E, G independently represent N, CH or CR, where R may be unsubstituted alkyl of one to three carbon atoms, unsubstituted aryl or unsubstituted cycloalkyl Z represents CH or N

[0043] And it represents CH or N

[0044] W represents O or S or NH, such as benzothiophenyl, benzofuranyl, benzopyrrolyl,

[0045] - R 7represents a hydrogen atom (H); an unsubstituted aryl group or an aryl group substituted by one or more hydroxy groups, such as hydroxyphenyl (for example, substituted by a hydroxyl), or substituted by one or more methoxyl groups; halogen (F, Cl, Br, I); alkenyl of 2 to 10 atoms, such as of 3, 4, 5, 6, 7, 8, 9 or 10 carbon atoms - preferably of 3 to 10 carbon atoms unsubstituted or substituted by an aryl group such as phenyl; alkenyl of 2 carbon atoms substituted by phenyl (styryl); alkoxycarbonyl of 2 to 5 carbon atoms; a heteroaryl group, such as furanyl, thiophenyl, pyrrolyl or pyridinyl; or heteroaryl where the heteroaryl group is selected from benzothiophenyl, benzofuranyl, benzopyrrolyl; dibenzothiophenyl, a group of formula II and a group of formula III as defined above,

[0046] - in which: - at least 3 of the R substituents 2 , R 3 , R 5 , R 6 and R7 are simultaneously H, and the carbon 8 position of the amidazo[1,2a]p¡hd¡na structure does not carry substituents, and

[0047] - when R 5 is carbaldehyde, at least one of R 2 , R 3 , R 6 or R 7 is different from H,

[0048] - when R 6 is aryl or substituted aryl, R 3 is not substituted aryl

[0049] - when R 3 represents an amino group, R 6 does not represent hydrogen

[0050] - when R 2 represents unsubstituted aryl, or aryl substituted with a methyl or methoxy group, at least one of the substituents R 2 , R 3 , R 5 , R 6 and R 7 it's not H

[0051] - at least one of the R groups 3 , R 5 , R 6 , R 7 is different from H, when R 2is unsubstituted aryl, or is an aryl substituted with halogen, methyl or methoxy. or is a compound of formula (I) in which

[0052] R 2 represents aryl substituted with alkoxy of 1 to 5 carbon atoms and simultaneously R 6 It is an aryl group substituted with a halogen (F, Cl, Br, I), and the other substituents have the meanings indicated above.

[0053] The group is N-(3-methylene-2-oxoindole-5-yl)-3-(piperidin-1-yl)propanamide) in the position

[0054] R 5 , gives rise to a compound of formula I which is as shown below:

[0055] "Aryl" means a phenyl group; fused aromatic carbocycle, such as naphthyl or anthranyl; or indanyl, without heteroatoms.

[0056] “Alkyl”, unless otherwise stated, means alkyl of 1 to 5 carbon atoms, in particular methyl, ethyl, propyl or butyl

[0057] “Alkenyl”, unless otherwise indicated, means alkenyl of 2 to 10 carbon atoms.

[0058] “Heteroaryl” unless otherwise indicated, means a monocyclic, or fused bicyclic, group composed of from 5 to 10 ring members, having at least one aromatic moiety and containing from 1 to 3 heteroatoms selected from oxygen, sulfur and nitrogen.

[0059] “Haloalkyl”, unless otherwise indicated, means an alkyl group of 1 to 3 carbon atoms, substituted by one or more halogen atoms, selected from fluorine, chlorine, bromine or iodine.

[0060] “Cycloalkyl” has the usual meaning, that is, a univalent substituent derived from a cycloalkane without side chains.

[0061] According to particular realizations R 2represents aryl substituted with a CF3 group or with an alkoxy group of 1 to 5 carbon atoms, for example, substituted with methoxy; and preferably for these embodiments, R 3 and R 5 are simultaneously H.

[0062] According to further particular embodiments, R 2 represents aryl substituted with a para-methoxy-phenyl group, and preferably, in addition, R 3 and R 5 are simultaneously H.

[0063] According to further particular embodiments, R 2 represents aryl substituted with alkoxy of 1 to 5 carbon atoms, for example, substituted with methoxy, and simultaneously R 6 is an alkyl of one to 5 carbon atoms, for example methyl, or simultaneously R 6 is an aryl group substituted with a hydroxyl, or with halogen (F, Cl, Br, I); and preferably for these embodiments, R 3 and R 5 are simultaneously H.

[0064] According to further particular embodiments, R 2 represents a group selected from alkoxy-substituted aryl of 1 to 5 carbon atoms, for example, substituted with methoxy; and simultaneously R 6 is alkyl of one to 5 carbon atoms, for example methyl, or simultaneously R 6 is an aryl group substituted with a hydroxyl, or with halogen; and preferably for these embodiments, R 3 and R 5 are simultaneously H.

[0065] According to further particular embodiments, R 2 represents a phenyl substituted with alkoxy of 1 to 5 carbon atoms, for example, substituted with p-methoxy, or R 2 represents phenyl substituted with trihalomethyl, such as a p-trifluoromethylphenyl group; and simultaneously R 7 is a heteroaryl group, for example, 2-benzo[b]furyl; and preferably, for these embodiments, R 3 , R 4 , R 5 and R 6are simultaneously H.

[0066] According to additional particular embodiments: - R 2 represents aryl substituted with alkoxy of 1 to 5 carbon atoms, for example, substituted with methoxy, and R 7 is aryl substituted by hydroxyl or by an alkoxy group of 1 to 5 carbon atoms, for example, substituted by methoxy, or

[0067] - R 2 represents aryl substituted with alkoxy of 1 to 5 carbon atoms, for example, substituted with methoxy, and R 7 represents alkenyl substituted with an aryl group, for example, substituted with a phenyl; and preferably for these embodiments, R 3 and R 5 are simultaneously H.

[0068] According to further particular embodiments, R 2 represents aryl substituted with alkoxy of 1 to 5 carbon atoms, for example, substituted with methoxy, and R 7is aryl substituted by hydroxyl or by an alkoxy group of 1 to 5 carbon atoms, for example, substituted by methoxy, or alkenyl substituted by an aryl group, for example, substituted by phenyl; and preferably for these embodiments, R 3 and R 5 are simultaneously H.

[0069] According to preferred embodiments, R 2 represents aryl substituted with alkoxy of 1 to 5 carbon atoms, for example, substituted with methoxy, R 3 is H, R 6 is H, alkyl group or aryl group, and R 7 is H or aryl substituted by hydroxyl or by an alkoxy group of 1 to 5 carbon atoms, for example, substituted by methoxy; and preferably, for these embodiments, R 3 and R 5 are simultaneously H.

[0070] According to further particular embodiments, R 3 is an unsubstituted aryl; and preferably for these embodiments, R 2 , R 5 and R 6are simultaneously H; and more preferably for these embodiments, R 2 , R 5 , R 6 and R 7 are simultaneously H.

[0071] According to further particular embodiments, R 3 represents an aromatic heterocycle, which may be unsubstituted, or may be substituted with an alkoxycarbonyl group of 2 to 5 carbon atoms, such as an ethoxycarbonyl group; and preferably for these embodiments, R 2 , R 5 and R 6 are simultaneously H; and more preferably for these embodiments, R 2 , R 5 , R 6 and R 7 are simultaneously H.

[0072] According to further particular embodiments, R 3is a group selected from benzofuranyl, benzothiophenyl and indole, which may be unsubstituted or may be substituted with an alkoxycarbonyl group of 2 to 5 carbon atoms, such as an ethoxycarbonyl group; and preferably for these embodiments, R 2 , R 5 and R 6 are simultaneously H; and more preferably, for these embodiments, R 2 , R 5 , R 6 and R 7 are simultaneously H.

[0073] According to further particular embodiments, R 3 is a group selected from benzofuranyl, benzothiophenyl and indole, which may be unsubstituted or may be substituted with an alkoxycarbonyl group of 2 to 5 carbon atoms, such as an ethoxycarbonyl group; and simultaneously and R 7 is a group selected from benzofuranyl, benzothiophenyl and indole; preferably for these embodiments, R 2 , R 5 and R 6 are simultaneously H.

[0074] According to further particular embodiments, R 5 represents H, ethoxycarbonyl, nitro, carboxyl, hydroxymethyl, carbaldehyde, or ethoxy, and preferably, for these embodiments R 2 , R 3 , R 6 and R 7 are simultaneously H.

[0075] According to further particular embodiments, R 7 and R 6 independently represent a fragment

[0076] II in which D, B, E, G independently represent CH or CR, where R may be unsubstituted alkyl of one to 3 carbon atoms, unsubstituted aryl or unsubstituted cycloalkyl, Z represents CH and W represents O.

[0077] According to further particular embodiments, R 7 or R 6 represents a fragment

[0078] II in which D, B, E, G independently represent CH, Z represents CH and W represents O.

[0079] According to further particular embodiments, R 6 represents an alkyl group of 1 to 5 carbon atoms or alkoxycarbonyl (-O-(C=O)-R) where R has 1 to 3 carbon atoms, such as methoxycarbonyl; and preferably, for these embodiments R 2 , R 3 , R 5 and R 7 are simultaneously H.

[0080] According to further particular embodiments, R 7 represents an unsubstituted aryl group, such as phenyl, and preferably, for these embodiments R 2 , R 3 , R 5 and R 7 are simultaneously H.

[0081] According to further particular embodiments, R 7 represents a benzofuranyl group, and preferably, for these embodiments R 2 , R 3 , R 5 and R 6 are simultaneously H.

[0082] According to particular embodiments, the compound of formula I is selected from:

[0083] - ¡m¡dazo[1 ,2-a]pihd¡n-5-carboxíl¡co acid (2)

[0084] - lmidazo[1,2-a]pyridin-5-ethyl carboxylate (3)

[0085] - 3-Phenylimidazo[1,2-a]pyridine (4)

[0086] - lmidazo[1,2-a]pyridin-5-ylmethanol (5)

[0087] - 2-(4-Methoxyphenyl)-6-methylimidazo[1,2-a]pyridine (8)

[0088] - 4-(lmidazo[1,2-a]pyridin-7-yl)phenol (12)

[0089] - 4-(2-(4-(T rifluoromethyl)phenyl)imidazo[1 , 2-a]pyrid i n-7-yl)phenol (13)

[0090] - 4-(2-(4-(T rifluoromethyl)phenyl)imidazo[1 ,2-a]pyrid i n-6-yl)phenol (15)

[0091] - 4-(2-(4-Methoxyphenyl)imidazo[1,2-a]pyridin-7-yl)phenol (16)

[0092] - 4-(2-(4-Methoxyphenyl)imidazo[1,2-a]pyridin-6-yl)phenol (17)

[0093] - (E)-7-Estyrylimidazo[1,2-a]pyridine (19)

[0094] - (E)-2-(4-Methoxyphenyl)-7-estyrylimidazo[1,2-a]pyridine (20)

[0095] - 7-(3,4-Dimethoxyphenyl)imidazo[1,2-a]pyridine (21)

[0096] - 6-lodo-2-(4-(trifluoromethyl)phenyl)imidazo[1 ,2-a]pyridine (25)

[0097] - 7-(Benzofuran-2-yl)imidazo[1,2-a]pyridine (26) PS1906

[0098] - 4-(lmidazo[1,2-a]pyridin-6-yl)phenol (27)

[0099] - (E)-6-Estyrylimidazo[1 ,2-a]pyridine (28)

[0100] - 6-(Benzofuran-2-yl)imidazo[1,2-a]pyridine (29)

[0101] - 6-(3,4-Dimethoxyphenyl)imidazo[1,2-a]pyridine (30)

[0102] - Ethyl 5-(imidazo[1,2-a]pyridin-3-yl)-1 / 7-indol-2-carboxylato (31) (PS1801)

[0103] - 7-(Benzofuran-3-yl)imidazo[1,2-a]pyridine (32)

[0104] - 6-(Benzofuran-3-yl)imidazo[1,2-a]pyridine (33)

[0105] - 7-(Furan-3-yl)imidazo[1,2-a]pyridine (34) - 6-(Furan-3-yl)imidazo[1,2-a]pyridine (35)

[0106] - 7-(Thiophen-3-yl)imidazo[1,2-a]pyridine (36)

[0107] - 6-(Thiophen-3-yl)imidazo[1,2-a]pyridine (37)

[0108] - 7-(Pyridin-4-yl)imidazo[1 ,2-a]pyridine (38)

[0109] - 6-(Pyridin-4-yl)imidazo[1 ,2-a]pyridine (39)

[0110] - 7-(Dibenzothiophen-3-yl)imidazo[1,2-a]pyridine (40)

[0111] - 6-(Dibenzothiophen-3-yl)imidazo[1,2-a]pyridine (41)

[0112] - 5-(7-(Benzofuran-2-yl)-3-imidazo[1 ,2-a]pyridin)-1 / 7-indol-2-carboxylate de ethyl, (42)

[0113] - N-(3-(imidazo[1 ,2-a]pyridin-5-ylmethyl0n)-2-oxoindolin-5-yl)-3-(piperidin-1-yl)propanamida.

[0114] According to a preferred implementation, the composition of formula I is 7-(benzofuran-2-yl)imidazo[1,2-a]pyridine. (26), PS1906.

[0115] According to a preferred alternative implementation, the composition of formula I is ethyl 5- (imidazo[1,2-a]pyridin-3-yl)- 1 H-indol-2-carboxylate, composed (31).

[0116] The present invention also relates to a process for preparing a compound of formula I comprising:

[0117] 1) React an amino pyridine of formula (IV) (commercial)

[0118] (IV) where X is Cl, Br, or I, with RB(OH)2 where R is a fragment of formula R 7 or R 6 defined above to obtain a compound of formula (V) and 2) reacting the compound of formula (V) with a haloketone of formula (VI) where X is Cl, Br or I and R2 gives rise to a compound of formula I defined above.

[0119] The reaction in step 1) can be carried out in the presence of a Pd(0) catalyst and an inorganic base such as potassium carbonate.

[0120] The temperature for the reaction in step 1) can be between 80 and 150 °CT

[0121] The reaction in step 1) can be carried out conventionally (18-24 h) or with microwaves (1-5 h).

[0122] The solvent for the reaction in step 1) may be, for example, a polar solvent, such as 1,2-dimethoxyethane, 1,4-dioxane, DMF, DMSO.

[0123] The reaction in step 2) can be carried out in the presence of a solvent, such as those mentioned for step 1) and an organic or inorganic base, such as sodium or potassium bicarbonate, sodium or potassium phosphate, potassium acetate, potassium methoxide.

[0124] The reaction in step 2) can be carried out at a temperature between 25 and 120 °C, preferably under reflux.

[0125] A further alternative of the process for preparing a compound of formula I comprises:

[0126] 1) React an amino pyridine of formula (IV) where X is Cl, Br, or I, with a haloketone of formula (VI)) where X is Cl, Br or I and R2 has the meaning given above giving rise to a compound of formula VII

[0127] 2) and react the compound of formula (VII) with RB(OH)2 in which R- is a fragment of formula R 6 or R 7 defined above, giving rise to a compound of formula I.

[0128] In the case of compounds of formula I substituted at the 7-position with an aromatic heterocyclic substituent, the process comprises reacting 7-bromoimidazo[1,2-a]pyridine and (hetero)arylboronic acids by Suzuki couplings.

[0129] A third alternative procedure for preparing the compounds of formula I, when they carry a heteroaryl as a substituent on the C3 carbon, is to use the Heck reaction, which comprises reacting an imidazopyridine with a haloheteroaryl, in the presence of a Pd(0) catalyst that is generated in situ.

[0130] To analyze the Alk5 inhibitory activity of the compounds of the invention in in vitro kinase activity assays, the studies of Roth et al. (Roth et al., 2010) were followed. For this purpose, recombinant Alk5 (Abeam, ref. ab105908) was used, and kinase activity was determined using the commercial Kinase-Glo® Luminiscent kinase assay platform (Promega, ref. TB372). As a positive inhibition control, the compound GW788388 Hydrate (Sigma-Aldrich ref. SML0116) was used, whose formula is (4-{4-[3- (pyridin-2-yl)-1 H-pyrazol-4-yl]-pyridin-2-yl}-N-(tetrahydro-2H-pyran-4-yl)benzamide hydrate, a potent Alk5 inhibitor for oral use. The invention has applications in Biomedicine, in the pharmaceutical sector, as well as in cosmetics and nutraceuticals. Effective formulations can be obtained for topical, oral and parenteral application.

[0131] A further object of the invention relates to a compound of formula I, as described above, for use as a medicament.

[0132] According to particular embodiments, said use comprises the treatment of an inflammatory disease in a subject.

[0133] The terms "treatment" and "treat" as used herein refer to the medical treatment of a subject with the intent to cure, ameliorate, stabilize, or prevent a disease, pathological condition, or disorder. This term includes active treatment, i.e., treatment specifically directed at ameliorating a disease, pathological condition, or disorder, and also includes causal treatment, i.e., treatment directed at eliminating the cause of the associated disease, pathological condition, or disorder.Furthermore, this term includes palliative treatment, i.e., treatment designed to alleviate symptoms rather than cure the disease, pathological condition, or disorder; preventative treatment, i.e., treatment aimed at minimizing or partially or completely inhibiting the development of the associated disease, pathological condition, or disorder; and supportive treatment, i.e., treatment used to complement another specific therapy aimed at ameliorating the associated disease, pathological condition, or disorder. It is understood that treatment, although intended to cure, ameliorate, stabilize, or prevent a disease, pathological condition, or disorder, need not actually result in the cure, amelioration, stabilization, or prevention. The effects of treatment may be measured or evaluated as described herein and as known in the art, as appropriate for the disease, pathological condition, or disorder in question.Such measurements and assessments may be performed qualitatively and / or quantitatively. Thus, for example, the characteristics or features of a disease, pathological condition, or disorder and / or the symptoms of a disease, pathological condition, or disorder may be reduced to any effect or in any quantity. In the context of a subject suffering from an inflammatory disease, the terms "treatment" and "treat" refer to the medical management of a subject with the intent to cure, ameliorate, or stabilize said inflammatory disease.

[0134] As used herein, the term "subject" includes, but is not limited to, animals, plants, and any other organism or entity. The subject may be a vertebrate, more specifically a mammal (e.g., a human, horse, pig, rabbit, dog, sheep, goat, non-human primate, cow, cat, guinea pig, or rodent), fish, bird, or reptile or amphibian. The term does not denote a particular age or sex. Therefore, adult and newborn subjects, as well as fetuses, whether male or female, are covered by the definition of subject. A patient is a subject affected by a disease or disorder. The term "patient" includes human and veterinary subjects.In another aspect of the invention, one or more compounds of formula I for use in the treatment of an inflammatory disease can be administered to a subject comprising a human or an animal, including, but not limited to, a mouse, a dog, a cat, a horse, a bovine or ovine and the like.

[0135] As indicated above, the compounds of formula I are capable of inhibiting the phosphorylating activity of the Alk5 kinase, which inhibits the activation of macrophages, thus inhibiting the inflammatory response.

[0136] The term "inhibit" means to reduce or decrease the phosphorylated activity of the Alk5 kinase. This can be a complete inhibition of kinase activity or expression, or a partial inhibition. The inhibition can be compared to a control or a standard level. Inhibition can be 1 , 2, 3, 4, 5, 6, 7, 8, 9, 10, 11 , 12, 13, 14, 15, 16, 17, 18,

[0137] 19, 20, 21 , 22, 23, 24, 25, 26, 27, 28, 29, 30, 31 , 32, 33, 34, 35, 36, 37, 38, 39, 40, 41 , 42,

[0138] 43, 44, 45, 46, 47, 48, 49, 50, 51 , 52, 53, 54, 55, 56, 57, 58, 59, 60, 61 , 62, 63, 64,65, 66,

[0139] 67, 68, 69, 70, 71 , 72, 73, 74, 75, 76, 77, 78, 79, 80, 81 , 82, 83, 84, 85, 86, 87, 88, 89, 90,

[0140] 91, 92, 93, 94, 95, 96, 97, 98, 99, or 100% compared to said control.

[0141] In a particular embodiment, the inflammatory disease is selected from the group consisting of diseases that present with an inflammatory and / or pro-fibrotic component.

[0142] In another particular embodiment, the inflammatory disease is an inflammatory pulmonary disease selected from the group consisting of acute respiratory distress syndrome, chronic obstructive pulmonary disease, pulmonary fibrosis, pulmonary hypertension, pulmonary inflammation, preferably acute respiratory distress syndrome and pulmonary fibrosis.

[0143] In another particular embodiment, the inflammatory disease is an inflammatory bowel disease that occurs with a strong inflammatory component, such as Crohn's disease and ulcerative colitis. In another particular embodiment, the inflammatory disease is an inflammatory cardiovascular disease that occurs with a strong inflammatory component, such as acute myocardial infarction, myocarditis, or atherosclerosis.

[0144] In another particular embodiment, the inflammatory disease is any inflammatory disease that occurs with a strong inflammatory component, such as type 2 diabetes, multiple sclerosis, or cancer.

[0145] In another particular embodiment, the compound of formula I is ethyl 5-(imidazo[1,2-a]pyridine-3-yl)-1 H-indole-2-carboxylate (31) (PS1801).

[0146] In another particular embodiment, the compound of formula I is ethyl 5-(imidazo[1,2-a]pyridine-3-yl)-1 / 7-indole-2-carboxylate (31) (PS1906).

[0147] In a particular embodiment, the concentration of PS1801 or PS1906 administered to a subject is between 1000 mg / kg and 1 µg / kg of body weight, preferably between 500 mg / kg and 2 µg / kg, more preferably between 100 mg / kg and 3 µg / kg, even more preferably between 50 mg / kg and 4 µg / kg, even more preferably between 25 mg / kg and 5 µg / kg, even more preferably between 20 mg / kg and 8 µg / kg, even more preferably between 15 mg / kg and 10 µg / kg, even more preferably between 1 mg / kg and 50 µg / kg, and even more preferably between 800 µg / kg and 80 µg / kg.

[0148] Another additional object of the invention relates to a pharmaceutical composition, comprising one or more compounds of formula I, as defined above and one or more additional active compounds, and / or one or more pharmaceutically acceptable carriers, adjuvants or vehicles.

[0149] By "pharmaceutically acceptable" is meant a material that can be administered to a subject together with the selected compound without causing any undesirable biological effects or interacting in a deleterious manner with any of the other components of the pharmaceutical composition in which it is contained.

[0150] In a further embodiment, the pharmaceutically acceptable carrier may be a pharmaceutically acceptable disintegrant, surfactant, binder, and lubricant.

[0151] In a particular embodiment, the pharmaceutical composition comprises another additional active compound, such as steroids or corticosteroids (e.g., dexamethasone), and nonsteroidal anti-inflammatory drugs (NSAIDs) such as salicylates, ibuprofen, and naproxen. In a particular embodiment, when the compound of formula I is used for Acute Respiratory Distress Syndrome, the other active ingredient is dexamethasone.

[0152] In another particular embodiment, the additional active compound is another compound of formula I, described above.

[0153] As used herein, the term "a combination of," when referring to two or more additional compounds, agents, or active pharmaceutical ingredients, means the administration of two or more compounds, agents, or active pharmaceutical ingredients to the subject before, simultaneously with, or after each other.

[0154] In a particular embodiment, the additional active compound is selected from a mucolytic agent, a bronchodilator, an antibiotic, an antiviral agent, an anti-inflammatory agent, a nutritional agent and combinations thereof.

[0155] The compounds of formula I of the invention and the pharmaceutically acceptable compositions may be administered to a subject orally, intravenously, rectally, parenterally, intracisternally, intravaginally, intraperitoneally, topically (as powders, ointments or drops), buccally, as an oral or nasal spray, or the like, depending on the severity of the infection being treated preferably intravenously. In certain embodiments, the compounds or compositions of the invention may be administered at dosage levels of about 0.01 mg / kg to about 50 mg / kg and preferably about 1 mg / kg to about 25 mg / kg, of the subject's body weight per day, one or more times per day, to obtain the desired therapeutic effect.

[0156] Another additional object of the invention relates to a pharmaceutical composition, comprising one or more compounds of formula I, as defined above and one or more additional active compounds, and / or one or more pharmaceutically acceptable carriers, adjuvants or vehicles for use in the treatment of an inflammatory disease.

[0157] Each of the terms "comprises", "consists essentially of" and "consists of" may be substituted for either of the other two terms. The terms "a" or "an" may refer to one or a plurality of the elements they modify (e.g., "a reactant" may mean one or more reactants), unless it is contextually clear that one or more elements are being described. The term "about", as used herein, refers to a value within 10% of the underlying parameter (i.e., plus or minus 10%; e.g., a weight of "about 100 grams" may include a weight between 90 grams and 110 grams). The use of the term "about" at the beginning of a listing of values ​​modifies each of the values ​​(e.g., "about 1 , 2 , and 3" refers to "about 1 , about 2 , and about 3").When describing a list of securities, the list includes all intermediate securities and all fractional values ​​thereof (for example, the list of securities "80%, 85%, or 90%" includes the intermediate value 86% and the fractional value 86.4%). When a list of securities is followed by the term "or more," the term "or more" applies to each of the listed securities (for example, the list of "80%, 90%, 95%, or more" or "80%, 90%, or 95% or more" refers to "80% or more, 90% or more, or 95% or more"). When describing a list of values, the list includes all ranges between two of the listed values ​​(for example, the list of "80%, 90%, or 95%" includes ranges of "80% to 90%," "80% to 95%," and "90% to 95%"). Some examples of how the technology is used are given below.

[0158] Among the advantages of the present invention are: advantages at the production level, since these are chemically synthesized compounds, which have been optimized in the laboratory, maintaining identical product batches with identical solubility, stability, and reproducible characteristics. This optimization should result in both economic advantages, as the synthesis is more economical than obtaining them from natural products, and in the speed of compound production. The dose used in the in vitro tests shows that a very small amount of product is required to obtain the desired effect, and no toxic effect was observed in the cells analyzed at this dose.

[0159] Brief description of the figures

[0160] Figure 1: Graphical representation of the percentage of inhibition of Alk5 kinase in vitro of different synthesized compounds of the present invention, (the commercial compound GW788388 (GW) was used as a control).

[0161] Figure 2: Evaluation of cell viability (cytotoxicity) on human macrophages THP-1-XBIue™-CD14 of the different compounds at three different concentrations (1, 5 and 10 pM), the vehicle was PBS. GW788388 (GW) was used as a control. ***p<0.001

[0162] ***p<0.001 Figure 3: Effect of compounds PS1906 and PS1801 on the viability of human epithelial cells (Caco-2) and macrophages (THP-1-XBIue™-CD14) at different concentrations (1, 5 and 10 pM). GW788388 (GW) was used as a control.

[0163] Figure 4. Evaluation of the anti-inflammatory effect in THP-1-XBIue™-CD14 macrophages stimulated with bacterial LPS and subsequently treated with compounds PS1906 and PS1801 at 5 pM. GW788388 (GW) was used as a control. ****p<0.0001

[0164] Figure 5. Evaluation of the anti-inflammatory effect in THP-1-XBIue™-CD14 macrophages unstimulated with bacterial LPS and treated with compounds PS1906 and PS1801 at 5 pM. GW788388 (GW) was used as a control.

[0165] Figure 6. In vivo evaluation (mouse model with acute lung injury (ALI) produced by exposure to bacterial LPS) of the protective effect of the compound PS1906 at different equipotent doses (D1 and D2) where D1 = 156 pg / kg and D2 = 312 pg / kg. A) Images of histological sections of mouse lungs stained with Hematoxylin and Eosin; B) graphical representation of the assessment of lung damage (ALI Score) in the different treatments; C) Neutrophil count per mL of bronchoalveolar lavage of the analyzed mice (represented in a Log10 logarithmic scale); D) Lymphocyte count per mL of bronchoalveolar lavage of the analyzed mice (represented in a Log10 logarithmic scale). The data were represented as the mean value ± the standard error of the mean. Where # p<0.01; ## p<0.001; ***p<0.0001 analyzed by one-way ANOVA adjusted with Dunnet's multiple comparisons method.

[0166] EXAMPLES

[0167] MATERIALS AND METHODS

[0168] A. OBTAINING AND CHARACTERIZATION OF CHEMICAL COMPOUNDS

[0169] Synthesis of imidazo[1,2-a]pyridine derivatives

[0170] Imidazo[1,2-a]pyridine-5-carboxylic acid (2)

[0171] A reaction mixture of 2-chloroacetyl (13 mg, 0.173 mmol) and 6-aminopicolinic acid (20 mg, 0.144 mmol) in isopropanol (1.5 mL) is irradiated with microwaves in an inert atmosphere. After 40 min. at 170 °C under microwave irradiation, the resulting solid is filtered and dried to obtain 25 mg, Yield 43%.

[0172] NMR 1 H (400 MHz, Methanol-d4) 5 9.22 (d, J = 2.2 Hz, 1 H); 8.29 (dd, J = 7.2, 1 .3 Hz, 1 H); 8.21 - 8.13 (m, 2H); 8.06 (dd, J = 9.0; 7.3 Hz, 1 H).

[0173] NMR 13 C (101 MHz, Methanol-d4) 5 161.7; 140.9; 132.3; 129.5; 122.8; 121 .5; 116.5; 115.9. ethyl lmidazo[1,2-a]pyridine-5-carboxylate (3)

[0174] Thionyl chloride (0.072 mL, 0.987 mmol) is slowly added to a sealed tube solution of imidazo[1,2-a]piñon-5-carboxylic acid (64 mg, 0.395 mmol) in EtOH (7 mL). After 24 hours at 78 °C, the solvent is removed under reduced pressure and the reaction mixture is neutralized using aqueous NaHCO3 solution. The reaction crude is extracted using EtOAc as organic solvent. The organic phases are dried over MgSO4 and the solvent is removed under reduced pressure to obtain 50 mg, Yield 66%.

[0175] NMR 1 H (400 MHz, Acetone-cfe) 5 8.82 (s, 1 H); 7.86 (dd, J = 10.7; 8.2 Hz, 2H); 7.75 (s, 1H); 7.36 (dd, J = 8.9; 7.2 Hz, 1 H); 4.49 (q, J = 7.1 Hz, 2H); 1 .44 (t, J = 7.1 Hz, 3H).

[0176] NMR 13 C (101 MHz, Acetone-de) 5 162.7; 147.0; 135.6; 127.2; 123.50; 123.3; 119.5; 115.4; 62.8; 14.6.

[0177] 3-Phenylimidazo[1,2-a]pyridine (4)

[0178] A reaction mixture of imidazo[1,2- a]pyridine (115 mg, 0.973 mmol), bromobenzene (0.204 mL, 1.946 mmol), Pd(AcO) (0.027 mg, 0.097 mmol) and KOAc (0.200 mg, 1.946 mmol) in DMF (4 mL) was irradiated with microwaves under an inert atmosphere. After 1 h at 160 °C, the solvent was removed under reduced pressure and the reaction mixture was extracted using AcOEt as organic solvent. The organic phases were dried over MgSO4 and the solvent was removed under reduced pressure. The crude product was purified on a chromatographic column using a Toluene / MeOH (10:1) mixture to obtain 147 mg, Yield 77%.

[0179] NMR 1 H (400 MHz, Chloroform-d) 5 8.34 (d, J = 7.0 Hz, 1 H); 7.74 - 7.64 (m, 2H); 7.54 (dt, J = 15.4; 7.4 Hz, 4H); 7.46 - 7.39 (m, 1H); 7.25 - 7.15 (m, 1H); 6.81 (t, J = 6.8 Hz, 1 H).

[0180] NMR 13C (101 MHz, Chloroform-d) 5 146.3; 132.7; 129.5; 129.4; 128.3; 128.2; 125.9; 124.4; 123.5; 118.4; 112.7. lmidazo[1,2-a]pyridin-5-ylmethanol (5)

[0181] MeOH (13 pL, 0.325 mmol) is slowly added under an inert atmosphere to a mixture of ethyl imidazo[1,2-a]pine-5-carboxylate (30 mg, 0.158 mmol) and UBH4 (7 mg, 0.325 mmol) in Et2O (3 mL). After 5 hours at room temperature the reaction mixture was saturated with a 2M HCl solution at 0 °C. The reaction mixture was extracted with AcOEt as an organic solvent, the organic phases are dried over MgSO4 and the solvent is removed under reduced pressure to obtain the desired product.

[0182] NMR 1 H (400 MHz, DMSO-d6) 5 7.88 (d, J = 1.3 Hz, 1 H); 7.63 (d, J = 1 .3 Hz, 1 H); 7.53 (d, J = 9.0 Hz, 1 H); 7.26 (dd, J = 9.1; 6.8 Hz, 1 H); 6.92 (d, J = 6.6 Hz, 1 H); 4.76 (s, 2H).

[0183] NMR 13C (101 MHz, DMSO) 5 145.0; 138.4; 133.2; 124.2; 115.5; 110.5; 109.4; 59.6. 2-(4-Methoxyphenyl)-6-methylimidazo[1,2-a]pyridine (8)

[0184] 2-Bromo-1-(4-methoxyphenyl)ethan-1-one (160 mg, 0.694 mmol) is added under an inert atmosphere to a solution of 5-methylpyridin-2-amine (50 mg, 0.462 mmol) in acetone (4 mL). After 18 hours at 60 °C, the solvent is removed under reduced pressure and the reaction mixture is basified with an aqueous NaOH solution (1 M). The reaction mixture is extracted using CH2Cl2 as organic solvent, the organic phases are dried over MgSO4 and the solvent is removed under reduced pressure. The crude product is purified on a chromatographic column using a Hex / AcOEt mixture (1:1) as eluent to obtain 72 mg, Yield 65%.

[0185] NMR 1H (400 MHz, DMSO-Ó6) 5 8.28 (s, 1 H); 8.17 (s, 1 H); 7.87 (d, J = 8.7 Hz, 2H); 7.45 (d, J = 9.2 Hz, 1 H); 7.07 (dd, J = 9.2; 1 .8 Hz, 1 H); 6.99 (d, J = 8.7 Hz, 2H); 3.79 (s, 3H); 2.27 (s, 3H).

[0186] NMR 13 C (101 MHz, DMSO-Ó6) 5,158.9; 144.2; 143.8; 127.5; 126.7; 126.7; 124.1 ; 121 .15; 115.8; 114.1 ; 107.7; 55.1 ; 17.5.

[0187] Experimental procedure A: Cross-coupling reaction (A1) and heterocyclization (A2)

[0188]

[0189] R = Aryl, Formula I

[0190] X = Cl, Br (E)-styrenyl R = R 6 , R 7 (Aryl, (E)-styrenyl R 2 = H, Aryl

[0191] R 2 = H, Aryl

[0192] Suzuki’s reaction (A1):

[0193] The corresponding 4- or 5- halo-2-aminopyridine (1 eq) is added to a mixture of the corresponding boronic acid (1 ,2 eq), K2CO3 (1 ,3 eq) and Pd(PPhs)4 (2% mol) in a mixture of DME / H2O (4:1 , 5 mL / mmol) under an inert atmosphere in a microwave tube. After 30 minutes at 110 °C the solvent is evaporated under reduced pressure and the crude reaction product is purified in a chromatographic column using the corresponding eluents.

[0194] Alternative to the procedure using conventional heating

[0195] Alternatively, the corresponding 4- or 5-halo-2-aminopine (1 eq) is added to a mixture of the corresponding boronic acid (1.6 eq), Na2COs (2 eq) and Pd(PPhs)4 (2-10% mol) in a dioxane / FW mixture (12:1, 20 mL / mmol), and the mixture is refluxed under argon for 18 h. After evaporating the solvent under reduced pressure, the crude reaction product is purified on a chromatographic column using the corresponding eluents.

[0196] Heterocyclization (A2):

[0197] The corresponding α-halo ketone (1.75 eq) is added to a mixture of the 2-substituted aminopyridine (1 eq) and NaHCCh (0.1 g / 5 mL) in EtOH (4 mL). After 18 hours at 90°C, the solvent was evaporated under reduced pressure, the resulting solid was suspended in a solution of K2CO3 in H2O and extracted using AcOEt as the organic phase. The organic phases were dried over MgSO4 and the organic solvent was evaporated under reduced pressure to give the corresponding imidazopyridines.

[0198] 4-(lmidazo[1,2-a]pyridín-7-íl)phenol (12)

[0199] Using experimental method A2, a mixture of 4-(4-hydroxyphenyl)-2-aminopyridine (30 mg, 0.161 mmol), NaHCO3 (83 mg, 0.1 g / 5 mL EtOH) and 2-chloroacetaldehyde (20 pL, 0.322 mmol) in EtOH (4 mL) was stirred at 90 °C to obtain 25 mg, Yield 74%.

[0200] NMR 1H (400 MHz, DMSO-cfe) 5 8.53 (d, J = 7.2 Hz, 1 H); 7.89 (s, 1 H), 7.70 (s, 1 H); 7.61 (d, J = 8.2 Hz, 2H); 7.54 (s, 1H); 7.20 (d, J = 6.9 Hz, 1 H); 6.86 (d, J = 8.3 Hz, 2H).

[0201] NMR 13 C (101 MHz, DMSO-cfe) 5 173.7; 158.6; 145.2; 136.2; 133.5; 127.5; 126.7; 116.0; 112.4; 111.3; 111.0.

[0202] HPLC-MS (ES + ): CH3CN / H2O 2:98 to 95:5 (5 min), tr = 3.95 min, [M+H + ] = 211.

[0203] 4-(2-(4-(Trifluoromethyl)phenyl)imidazo[1,2-a]pyridin-7-yl)phenol (13)

[0204] Using experimental method A2, a mixture of 4-(4-hydroxyphenyl)-2-aminopyridine (30 mg, 0.161 mmol), NaHCO3 (83 mg, 0.1 g / 5 mL EtOH), and 2-bromo-1-(4-(trifluoromethyl)phenyl)ethan-1-one (30 mg, 0.322 mmol) in EtOH (4 mL) was stirred at 90 °C. The reaction crude was purified on a chromatographic column using C^Ch / MeOH as eluent to obtain 31 mg, Yield 54%. NMR 1<h2 style=";text-align:left;direction:ltr">H (500 MHz, DMSO-cfe) 5 9,74 (s, 1 H); 8.56 (d, J = 7.1 Hz, 1 H); 8,52 (s, 1 H); 8,19 (d, J = 8,1 Hz, 2H); 7,80 (d, J = 6,4 Hz, 3H); 7,68 (d, J = 8,6 Hz, 2H); 7.26 (dd, J = 7.2; 1.9 Hz, 1 H); 6,89 (d, J = 8,6 Hz, 2H);<h2 style=";text-align:left;direction:ltr"> <h2 style=";text-align:left;direction:ltr">

[0205] <h2 style=";text-align:left;direction:ltr"> RMN<h2 style=";text-align:left;direction:ltr"> 13 <h2 style=";text-align:left;direction:ltr"> C (126 MHz, DMSO-cfe) 5 158.4; 146,2; 143,6; 138,4; 137,5; 128,7; 128,2; 127,3; 126,4; 126.1 (q, CF = 3.8 HZ); 124.8 (q, JCF = 271 Hz); 116,3; 112,2; 111 ,8; 110,5.<h2 style=";text-align:left;direction:ltr"> <h2 style=";text-align:left;direction:ltr">

[0206] <h2 style=";text-align:left;direction:ltr"> HPLC-MS (ES<h2 style=";text-align:left;direction:ltr"> + <h2 style=";text-align:left;direction:ltr"> ): CH3CN / H2O 30: 70 a 95:5 (10 min), tr = 1 .96 min, [M+H<h2 style=";text-align:left;direction:ltr"> + <h2 style=";text-align:left;direction:ltr"> ] = 355.<h2 style=";text-align:left;direction:ltr"> <h2 style=";text-align:left;direction:ltr">

[0207] <h2 style=";text-align:left;direction:ltr"> 4-(2-(4-(Trifluorometil)fenil)imidazo[1,2-a]piridin-6-il)phenol (15)<h2 style=";text-align:left;direction:ltr"> <h2 style=";text-align:left;direction:ltr"> <h2 style=";text-align:left;direction:ltr">

[0208] Implementing the experimental method A2 a mixture of 5-(4-hidroxyphenyl)-2-aminopyridine (50 mg, 0.268 mmol), NaHCCh (83 mg, 0.1 g / 5 mL EtOH) and 2-bromo-1-(4- (trifluoromethyl)phenyl)ethane-1-ona (215 mg, 0.805 mmol) and EtOH (4 mL) was stirred at 90 °C. The reaction crude was purified in a chromatographic column to obtain 31 mg, Rto 31%.

[0209] MRI 1 H (500 MHz, DMSO-cfe) 5 9.65 (s, 1 H); 8.77 (dd, J = 1.9; 1.0 Hz, 1 H); 8.52 (s, 1 H); 8.20 (d, J = 7.8 Hz, 2H); 7.80 (d, J = 7.9 Hz, 2H); 7.65 (d, J = 9.4 Hz, 1 H); 7.58 (dd, J = 9.4; 1.8 Hz, 1 H); 7.56 - 7.53 (m, 2H); 6.89 (d, J = 8.6 Hz, 2H).

[0210] 13 C NMR (126 MHz, DMSO-cfe) 5 157.4; 144.1; 142.9; 137.9; 127.7; 127.1; 126.0; 125.7; 125.6 (q, JCF = 3.8 Hz); 125.6; 124.3 (q, CF = 272.5 Hz); 122.9; 116.7; 115.9; 110.8.

[0211] HPLC-MS (ES + ): CH3CN / H2O 30:70 to 95:5 (10 min), tr = 2.91 min, [M+H + ] = 355.

[0212] 4-(2-(4-Methoxyphenyl)imidazo[1,2-a]pyridin-7-yl)phenol (16) Employing experimental method A2 a mixture of 4-(2-aminopyridin-4-yl)phenol (69 mg, 0.386 mmol) and 2-bromo-1-(4-(methoxy)phenyl)ethan-1-one (103 mg, 0.464 mmol) in acetone (5 mL) was stirred at 90 °C. The reaction crude was filtered (0.22 pM) to yield 82 mg, Rto 67%.

[0213] NMR 1 H (400 MHz, DMSO-cfe) 5 9.79 (s, 1 H); 8.58 (d, J = 7.1 Hz, 1 H); 8.33 (s, 1 H); 7.89 (d, J = 8.7 Hz, 2H); 7.77 (s, 1 H); 7.69 (d, J = 8.7 Hz, 2H); 7.34 (d, J = 7.1 Hz, 1 H); 7.05 (d, J = 8.8 Hz, 2H); 6.91 (d, J = 8.6 Hz, 2H); 3.81 (s, 3H).

[0214] NMR 13 C (101 MHz, DMSO-cfe) 5,159.4; 158.2; 144.2; 142.7; 127.9; 127.9; 127.0; 127.0; 124.7; 115.9; 114.3; 112.1 ; 109.6; 108.0; 55.2.

[0215] HPLC-MS (ES + ): CH3CN / H2O 15:85 to 95:5 (5 min), tr = 4.09 min, [M+H + ] = 317.

[0216] <h2 style=";text-align:left;direction:ltr">4-(2-(4-Metoxifenil)imidazo[1,2-a]piridin-6-il)phenol (17)<h2 style=";text-align:left;direction:ltr"> <h2 style=";text-align:left;direction:ltr"> <h2 style=";text-align:left;direction:ltr">

[0217] <h2 style=";text-align:left;direction:ltr"> Employed experimental method A2 mezcla of 4-(6-aminopiridin-3-il)phenol (70 mg, 0.375 mmol) and 2-bromo-1-(4-(metoxi)fenil)etan-1-ona (103 mg, 0.464 mmol) and acetona (5 mL) at 90 °C. The reaction rate is filtered to take 71 mg, Rto 60%.<h2 style=";text-align:left;direction:ltr"> <h2 style=";text-align:left;direction:ltr">

[0218] <h2 style=";text-align:left;direction:ltr"> RMN<h2 style=";text-align:left;direction:ltr"> 1 <h2 style=";text-align:left;direction:ltr"> H (400 MHz, DMSO-cfe) 5 9,64 (s, 1 H); 8,76 (s, 1 H); 8,30 (s, 1 H); 7,90 (d, J = 8,7 Hz, 2H); 7,61 (m, 2H); 7,54 (d, J = 8,5 Hz, 2H); 7,04 (d, J = 8,8 Hz, 2H); 6,89 (d, J = 8,6 Hz, 2H); 3.81 (s, 3H).<h2 style=";text-align:left;direction:ltr"> <h2 style=";text-align:left;direction:ltr">

[0219] <h2 style=";text-align:left;direction:ltr"> RMN<h2 style=";text-align:left;direction:ltr"> 13 <h2 style=";text-align:left;direction:ltr"> C (126 MHz, DMSO-cfe) 5 159.2; 157,4; 143,1 ; 127,7; 127,0; 126,9; 125,8; 125,7; 122,8; 115,8; 115,6; 114,2; 108,5; 55,1.<h2 style=";text-align:left;direction:ltr"> <h2 style=";text-align:left;direction:ltr">

[0220] <h2 style=";text-align:left;direction:ltr"> HPLC-MS (ES<h2 style=";text-align:left;direction:ltr"> + <h2 style=";text-align:left;direction:ltr"> ): CH3CN / H2O 15:85 a 95:5 (5 min), tr = 4.13 min, [M+H<h2 style=";text-align:left;direction:ltr"> + <h2 style=";text-align:left;direction:ltr"> ] = 317.<h2 style=";text-align:left;direction:ltr"> <h2 style=";text-align:left;direction:ltr">

[0221] <h2 style=";text-align:left;direction:ltr"> (E)-7-Estirilimidazo[1,2-a]piridina (19)<h2 style=";text-align:left;direction:ltr"> <h2 style=";text-align:left;direction:ltr"> <h2 style=";text-align:left;direction:ltr">

[0222] When implementing experimental method A2, a mixture of (E)-4-estyrylpyridin-2-amine (50 mg, 0.254 mmol) and 2-chloroacetaldehyde (19 µL, 0.305 mmol) in acetone (6 mL) was stirred at 40 °C to obtain 53 mg, Rto 94%.

[0223] MRI 1 H (400 MHz, Chloroform-d) 5 8.00 (d, J = 7.1 Hz, 1 H); 7.54 (d, J = 8.0 Hz, 2H); 7.46 (d, J = 8.8 Hz, 3H); 7.31 (t, J = 7.5 Hz, 2H); 7.26 - 7.17 (m, 2H); 7.03 (dd, J = 16.5; 6.5 Hz, 3H).

[0224] MRI 13 C (101 MHz, Chloroform-d) 5 145.8; 136.7; 134.4; 134.1; 130.6; 128.9; 128.3; 126.8; 125.5; 115.7; 112.6; 110.2.

[0225] HPLC-MS (ES + ): CH3CN / H2O 5:95 to 95:5 (5 min), tr = 4.59 min, [M+H + ] = 221 .

[0226] (E)-2-(4-Methoxyphenyl)-7-estyrylimidazo[1,2-a]pyridine (20)

[0227] Employing experimental method A2 a mixture of (E)-4-styrylpyridin-2-amine (63 mg, 0.323 mmol) and 2-bromo-1-(4-(trifluoromethyl)phenyl)ethane-1-one (88 mg, 0.387 mmol) in acetone (2 mL) was stirred at 4 °C. The reaction crude was filtered (0.22 pM) to obtain 60 mg, Rto 47%.

[0228] NMR 1 H (500 MHz, Chloroform-d) 5 7.98 (d, J = 7.0 Hz, 1 H); 7.73 (d, J = 8.7 Hz, 2H); 7.67 (s, 1 H); 7.44 (s, 1 H); 7.39 (d, J = 7.1 Hz, 2H); 7.22 (t, J = 7.6 Hz, 2H); 7.14 (t, J = 7.3 Hz, 1 H); 7.01 (d, J = 16.3 Hz, 1 H); 6.98 - 6.92 (m, 2H); 6.81 (d, J = 8.8 Hz, 2H); 3.69 (s, 3H).

[0229] NMR 13 C (126 MHz, Chloroform-d) 5,159.4; 145.5; 145.3; 136.2; 134.3; 130.2; 128.5; 127.9; 127.0; 126.4; 126.45; 125.7; 125.2; 114.3; 113.9; 109.9; 107.5; 55.1.

[0230] HPLC-MS (ES + ): CH3CN / H2O 15:85 to 95:5 (5 min), tr = 4.81 min, [M+H + ] = 327.

[0231] 7-(3,4-Dimethoxyphenyl)imidazo[1 ,2-a]pyridine (21

[0232] Using experimental method A2, a mixture of 4-(3,4-dimethoxyphenyl)pyridin-2-amine (50 mg, 0.217 mmol), NaHCOs(50 mg, 0.1 g / 5 mL EtOH) and 2-chloroacetaldehyde (27 L, 0.434 mmol) in EtOH (2.5 mL) was stirred at 90 °C to obtain 52 mg, Yield 94%.

[0233] NMR 1 H (400 MHz, Chloroform-d) 58.13 (d, J = 7.1 Hz, 1H); 7.76 (s, 1H); 7.63 (s, 1H); 7.55 (s, 1H);7.20 (dd, J = 8.3; 2.2 Hz, 1H); 7.15 (d, J = 2.2 Hz, 1H);7.04 (dd, = 7.1; 1.8 Hz, 1H); 6.95 (d, J= 8.3 Hz, 1H); 3.95 (s, 3H); 3.92 (s, 3H).

[0234] NMR 13 C (101 MHz, Chloroform-d) 5 149.5; 146.1; 137.4; 134.3; 131.6; 125.6; 119.3; 113.9; 112.3; 111.9; 111.7; 109.9; 56.1.

[0235] HPLC-MS (ES + ): CH3CN / H2O 10:90 to 95:5 (5 min), tr= 1.46 min, [M+H + ] = 255.

[0236] Experimental procedure B: Heterocyclization (B1) and Suzuki coupling reaction (B2)

[0237] X - Cl, Br, IR = Aryl, (E)-styrenyl Formula IR 2 = H, Aril R = R 6 , R 7 (Aryl, (E)-styrenyl

[0238] R 2 = H, Aril

[0239] Heterocyclization (B1): The corresponding α-halo-ketone (1,5-2 eq) is added to a mixture of the corresponding halo-2-aminopyridine and NaHCO3 (0.1 g / 5 mL -if EtOH was used as solvent-) in EtOH. The reaction mixture was heated to a temperature above the boiling point of the solvent used, in each case, for 18 hours. After the reaction time, the solvent was evaporated under reduced pressure and the reaction crude was suspended in an aqueous K2CO3 solution and subsequently extracted using AcOEt. The organic phases were dried over anhydrous MgSO4, filtered and the solvent was evaporated under reduced pressure to obtain the corresponding imidazo[1,2-α]pyridines.

[0240] Suzuki's reaction (B2):

[0241] The corresponding halo-imidazo[1,2-a]pyridine (1 eq) is added to a mixture of the corresponding boronic acid (1,2 eq), and the corresponding base (NaHCCh (1,3 eq) or K2CO3 (1,1 eq)) and Pd(PPh3)4 (2 mmol%) in 1,4-dioxane / H2O (3:1) or DME / H2O (4:1) - depending on the reaction - in a microwave tube. The mixture is heated at 130 °C for 30 minutes. After the reaction time, the solvent was evaporated under reduced pressure and the crude reaction product was purified on a chromatographic column to obtain the corresponding imidazo[1,2-a]pyridines.

[0242] The corresponding halo-imidazo[1,2-a]pyridine (1 eq) is added to a mixture of the corresponding boronic acid (1,2 eq) and the corresponding base (NaHCO3 (1,3 eq) or K2CO3 (1,1 eq)) and Pd(PPh3)4 (2 mmol%) in 1,4-dioxane / H2O (3:1) or DME / H2O (4:1) - depending on the reaction. The mixture is heated under reflux for 18 h. After the reaction time, the solvent was evaporated under reduced pressure and the reaction crude was purified on a chromatographic column to obtain the corresponding imidazo[1,2-a]pyridines.

[0243] 6-lodo-2-(4-(trifluoromethyl)phenyl)imidazo[1,2-a]pyridine (25) Using experimental method B1 a mixture of 5-iodo-2-aminopyridine (41 mg, 0.136 mmol), NaHCO3 (80 mg, 0.1 g / 5 mL EtOH) and 2-bromo-1-(4-(fluoromethyl)phenyl)ethan-1-one (60 mg, 0.204 mmol) in EtOH (4 mL) was stirred at 90 °C and the reaction crude was purified on a chromatographic column using C^Ch / MeOH as eluent to obtain 25 mg, Yield 47%.

[0244] NMR 1 H (400 MHz, Chloroform-d) 5 8.40 (s, 1 H); 8.03 (d, J = 8.0 Hz, 2H); 7.85 (s, 1 H); 7.68 (d, J = 8.1 Hz, 2H); 7.45 (d, J = 9.4 Hz, 1 H); 7.37 (dd, J = 9.5; 1 .6 Hz, 1 H).

[0245] NMR 13 C (101 MHz, Chloroform-d) 5 144.6; 144.4; 136.6; 133.4; 126.3; 125.9 (q, JCF = 273 Hz); 124.3 (q, JCF = 3.8 Hz); 118.7; 108.7; 75.8.

[0246] HPLC-MS (ES + ): CH3CN / H2O 40:60 and 95:5 (10 min), tr = 5.57, [M+H + ] = 389.

[0247] 7-(Benzofuran-2-yl)imidazo[1,2-a]pyridine. (26) PS1906

[0248] Using experimental method A1, 4-iodo-2-aminopine (440 mg, 2.15 mmol), benzofuran-2-boronic acid (584 mg, 3.6 mmol), Pd(PPhs)4, (248 mg, 10 mol%), and Na2COs (477 mg, 4.5 mmol) were successively added to a mixture of dioxane (74 mL) and H2O (6 mL). The mixture was refluxed under argon for 18 h. After removal of the solvent in vacuo, the reaction crude was purified by column chromatography using C^Ch / MeOH as eluent to obtain 431 mg, Yield 95 %. Using experimental method A2, the product thus obtained (5-(benzofuran-2-yl)pine-2-amine) was dissolved in EtOH (15 mL) and a solution of chloroacetaldehyde (40% in water, 1.0 mL) and NaHCO3 (344 mg, 4.1 mmol) were successively added. The mixture was refluxed for 18 h.After dilution with ethyl acetate, filtration through Celite, washing with saturated sodium chloride solution, drying of the organic phase over MgSÜ4, filtration, and evaporation of the solvent in vacuo, the reaction crude was purified on a chromatographic column using C^Ch / MeOH as eluent to obtain 440 mg of compound 26. Yield 92%.

[0249] Using experimental method B2, benzofuran-2-boronic acid (62 mg, 0.106 mmol), K2CO3 (46 mg, 0.106 mmol), Pd(PPhs)4, (6 mg, 2 mol%) and 7-bromoimidazo[1,2-a]pyridine (50 mg, 0.082 mmol) were dissolved in 5 mL of a DME / H2O (4:1) mixture. The reaction crude was purified on a chromatographic column using CH2Cl2 / MeOH as eluent to obtain 42 mg, Yr 70%.

[0250] NMR 1 H (400 MHz, Chloroform-d) 5 8.09 - 8.00 (m, 2H); 7.62 (s, 1H); 7.55 - 7.43 (m, 3H); 7.29 - 7.21 (m, 1H); 7.20 - 7.11 (m, 2H); 7.01 (s, 1H).

[0251] NMR 13C (101 MHz, Chloroform-d) 5 155.2; 153.8; 145.5; 135.0; 129.0; 126.7; 125.8; 125.1 ; 123.3; 121 .2; 113.0; 112.9; 111 .4; 109.7; 103.2.

[0252] HPLC-MS (ES + ): CH3CN / H2O 15:85 to 95:5 (5 min), tr = 1 .39 min, [M+H + ] = 235.

[0253] Compound PS1906 also has an anti-inflammatory effect in an in vivo murine model of acute lung injury (ALI), where it presents significant macroscopic differences and is significantly different from the group of diseased mice treated with LPS. Flow cytometry analysis of bronchoalveolar lavage showed a dose-dependent anti-inflammatory effect of compound PS1906 on both neutrophils and lymphocytes, and on the total infiltrated cell count.

[0254] 4-(lmidazo[1, 2-a] pi ri din -6-i I )fe no I (27)

[0255] Using experimental method B2, 4-hydroxyphenyl boronic acid (20 mg, 0.147 mmol), K2CO3 (22 mg, 0.160 mmol), Pd(PPhs)4, (2 mg, 2 mmol%) and 6- iodoimidazo[1,2-a]pyridine (30 mg, 0.123 mmol) were dissolved in 3 mL of a DME / H2O (4:1) mixture. The reaction crude was purified on a chromatographic column using CH2Cl2 / MeOH as eluent to obtain 28 mg, Yield 70%.

[0256] NMR 1 H (400 MHz, DMSO-cfe) 5 9.60 (s, 1 H); 8.78 (s, 1H); 7.93 (s, 1H); 7.63 - 7.55 (m, 2H); 7.55 - 7.48 (m, 3H); 6.87 (d, J = 8.6 Hz, 2H).

[0257] NMR 13 C (101 MHz, DMSO) 5 157.2; 143.5; 133.3; 127.6; 127.3; 125.1 ; 124.4; 122.9; 116.7; 115.8; 113.3.

[0258] HPLC-MS (ES + ): CH3CN / H2O 2:98 to 95:5 (5 min), tr = 3.92 min, [M+ H + ] = 211.

[0259] (E)-6-Styrylimidazo[1,2-a]pyridine (28)

[0260] Using experimental method B2, styryl boronic acid (22 mg, 0.147 mmol), NaHCO3 (11 mg, 0.135 mmol), Pd(PPhs)4 (2 mg, 2 mmol%) and 6-iodoimidazo[1,2- a]pyridine (30 mg, 0.123 mmol) were dissolved in 3 mL of a 1,4-dioxane / H2O (3:1) mixture. The reaction crude was purified on a chromatographic column using CH2Cl2 / MeOH as eluent to obtain 25 mg, Yield 91%.

[0261] NMR 1 H (400 MHz, Chloroform-d) 5 8.05 (s, 1 H); 7.57 - 7.50 (m, 2H); 7.47 (s, 1H); 7.46 - 7.36 (m, 3H); 7.34 - 7.25 (m, 2H); 7.25 - 7.17 (m, 1H); 6.99 (d, J = 16.3 Hz, 1 H); 6.92 (d, J = 16.3 Hz, 1 H).

[0262] NMR 13 C (101 MHz, Chloroform-d) 5 145.1 ; 136.9; 134.1 ; 129.5; 128.9; 128.1 ; 126.5; 124.3; 124.2; 123.5; 122.4; 117.9; 112.9.

[0263] HPLC-MS (ES + ): CH3CN / H2O 10:90 to 95:5 (5 min), tr = 4.13 min, [M+H + ] = 221.

[0264] 6-(Benzofuran-2-yl)imidazo[1,2-a]pyridine (29)

[0265] Using experimental method B2, benzofuran-2-boronic acid (16 mg, 0.106 mmol), K2CO3 (15 mg, 0.106 mmol), Pd(PPhs)4, (2 mg, 2 mmol%) and 6- iodoimidazo[1,2-a]pyridine (20 mg, 0.082 mmol) were dissolved in 3 mL of a DME / H2O (4:1) mixture. The reaction crude was purified on semipreparative HPLC (gradient: 10:90 to 40:60 CH3CN / H2O for 30 min) to obtain 10 mg, Yr 52%.

[0266] NMR 1 H (400 MHz, Acetone-cfe) 5 9.07 (s, 1 H); 8.02 (s, 1H); 7.74 (dd, J = 9.5; 1 .8 Hz, 1 H); 7.70 - 7.60 (m, 3H); 7.56 (d, J = 8.1 Hz, 1 H); 7.41 - 7.32 (m, 2H); 7.27 (t, J = 7.4 Hz, 1 H).

[0267] NMR 13 C (101 MHZ, Acetone-cfe) 5 155.6; 153.9; 145.4; 135.0; 130.0; 125.6; 124.1 ; 123.9; 122.5; 121 .9; 118.5; 117.0; 114.8; 111 .7; 103.2.

[0268] HPLC-MS (ES + ): CH3CN / H2O 10:90 to 95:5 (5 min), tr = 4.40 min, [M+H + ] = 235. 6-(3,4-Dimethoxyphenyl)imidazo[1,2-a]pyridine (30)

[0269] Using experimental method B2, 3,3,4-dimethoxyphenyl boronic acid (33 mg, 0.184 mmol), Na2COs (20 mg, 0.246 mmol), Pd(PPhs)4, (7 mg, 5 mmol%) and 6- iodoimidazo[1,2-a]pyridine (30 mg, 0.123 mmol) were dissolved in 3 mL of a W / MeOH / Toluene (1:2:8) mixture. The reaction crude was purified on a chromatographic column using CF^Ch / MeOH as eluent to obtain 30 mg, Yr 96%.

[0270] NMR 1 H (400 MHz, Chloroform-d) 5 8.25 (s, 1 H); 7.64 (t, J = 10.9 Hz, 3H); 7.39 (dd, J = 9.3; 1 .9 Hz, 1 H); 7.09 (dd, J = 8.2; 2.2 Hz, 1 H); 7.03 (d, J = 2.1 Hz, 1 H); 6.95 (d, J = 8.2 Hz, 1 H); 3.95 (s, 3H); 3.92 (s, 3H).

[0271] NMR 13 C (101 MHz, Chloroform-d) 5 149.5; 149.2; 144.7; 134.0; 130.3; 126.9; 125.4; 122.6; 119.5; 117.7; 112.8 111 .8; 110.3; 56.1 ; 56.1.

[0272] HPLC-MS (ES + ): CH3CN / H2O 10:90 to 95:5 (5 min), tr = 1 .39 min, [M+ H + ] = 255.

[0273] Experimental procedure C: Heck reaction

[0274] Pd(OAc)2 (10 mmol%) is added to a solution of the corresponding imidazo[1,2- a]pyridine (1 eq), the corresponding haloheteroyl (1,3 eq) and KOAc (2 eq) in DMF (4 mL) in a microwave tube, under argon flow. After irradiating the tube at 165 °C for 2 hours, a concentrated KOH solution (1 mL) is added to the reaction mixture and left under stirring for 1 hour at room temperature. After the reaction time is over, H2O is added and the reaction mixture is extracted with AcOEt. The organic phases are dried over MgSÜ4 and the solvent is evaporated under reduced pressure. The crude reaction product is purified on a chromatographic column using a Hexane / AcOEt mixture to obtain the corresponding imidazo[1,2- a]pyridines. Ethyl 5-(imidazo[1,2-a]pyridin-3-yl)-1 H-indole-2-carboxylate (31)

[0275] Using experimental method C, Pd(OAc)2 (15 mg, 10 mmol%) was added to a solution of imizado[1,2-a]pyñd¡ne (80 mg, 0.677 mmol), 5-bromo-1 / 7-indole-2- ethyl carboxylate (0.235 mg, 0.880 mmol) and KOAc (86 mg, 0.880 mmol) in DMF (4 mL). The reaction crude was purified on a chromatographic column using a Hexane / AcOEt mixture as eluent to obtain 130 mg, Yield 62%.

[0276] NMR 1 H (400 MHz, Chloroform-d): 5 9.61 (s, 1 H); 8.33 (d, J = 6.9 Hz, 1 H); 7.86 (s, 1H); 7.70 (d, J = 11 .5 Hz, 2H); 7.58 (d, J = 8.4 Hz, 1 H); 7.48 (d, J = 8.5 Hz, 1 H); 7.29 (s, 1H); 7.20 (t, J = 7.9 Hz, 1 H); 6.80 (t, J = 6.9 Hz, 1 H); 4.44 (q, J = 7.1 Hz, 2H); 1 .43 (t, J = 7.1 Hz, 3H).

[0277] NMR 13 C (101 MHz, Chloroform-d): 5 161.9; 145.8; 136.7; 132.1 ; 128.8; 128.1 ; 126.4; 126.0; 124.2; 123.5; 122.6; 121 .8; 118.2; 113.0; 112.6; 108.7; 61 .3; 14.5.

[0278] HPLC-MS (ES +): CH3CN / H2O 10:90 to 90:10 (5 min), tr = 4.24, [M+H + ] = 306.

[0279] 7-(Benzofuran-3-yl)imidazo[1,2-a]pyridine (32)

[0280] The synthesis of 32 was carried out using general procedure B2. Using 7-bromoimidazo[1,2-a]pyridine (0.25 mmol), benzofuran-3-boronic acid (0.33 mmol) in DME / H2O (4:1). Obtaining a yellowish-white solid with a yield of 82%. 1 H NMR (500 MHz, CDCI3) 5 8.21 (d, J = 7.0 Hz, 1 H, 5), 7.98 (d, J = 0.9 Hz, 1 H), 7.97 - 7.90 (m, 2H), 7.69 (s, 1 H), 7.62 (s, 1 H), 7.61 - 7.55 (m, 1 H), 7.44 - 7.33 (m, 2H), 7.09 (d, J = 7.0 Hz, 1 H, 6). 13 C NMR (126 MHz, CDCI3) 5 156.32, 142.59, 134.44, 132.54, 128.94, 128.85, 126.31, 126.03, 125.45, 123.87, 120.73, 115.14, 112.96, 112.79, 112.41. MS (ES + ,m / z), 235 [M+H] + .

[0281] 6-(Benzofuran-3-yl)imidazo[1,2-a]pyridine (33)

[0282] The synthesis of 33 was carried out using general procedure B2. Using 6-iodoimidazo[1,2-a]pyridine (0.20 mmol), benzofuran-3-boronic acid (0.26 mmol) in DME / H2O (4:1). Obtaining a dark green solid with a yield of 68%.

[0283] 1 H NMR (500 MHz, CDCI3) 5 8.42 (s, 1 H), 7.83 (s, 1 H), 7.79 - 7.76 (m, 1 H), 7.74 (d, J = 9.3 Hz, 1 H), 7.69 (s, 1 H), 7.67 (s, 1 H), 7.58 (d, J = 8.2 Hz, 1 H), 7.44 (dd, J = 9.3, 1 .7 Hz, 1 H), 7.42 - 7.38 (m, 1 H), 7.35 (td, J = 7.6, 1 .0 Hz, 1 H). 13 C NMR (126 MHz, CDCI3) 5 155.9, 144.8, 141.7, 134.0, 126.1, 125.5, 125.2, 123.5, 123.2, 120.0, 118.6, 118.3, 117.9, 113.0, 112.2. MS (ES + ,m / z), 235 [M+H] + .

[0284] 7-(Furan-3-yl)imidazo[1,2-a]pyridine (34)

[0285] The synthesis of 34 was carried out employing the general B2 procedure. Using 7-bromoimidazo[1 ,2-a]pyridine (0.25 mmol), furan-3-boronic acid (0.33 mmol) in 1 ,4-dioxane / H2O (3:1 ). Obtaining a brown oil with a yield of 73%.

[0286] 1 H NMR (500 MHz, CDCI3) or 8.26 (dd, J = 1.7, 1.0 Hz, 1 H, 10), 7.75 - 7.74 (m, 1 H, 3), 7.71 (d, J = 9.4 Hz, 1 H, 5), 7.66 (d, J = 1.3 Hz, 1 Hz, 1, 2 ). 7.61 (m, 1 H, 8), 7.53

[0287] - 7.52 (m, 1 H, 12), 7.37 (dd, J = 9.3, 1 .7 Hz, 1 H, 6), 6.67 (dd, J = 1 .9, 0.9 Hz, 1 H, 11). 13 C NMR (126 MHz, CDCI3) 5 144.29 (C12), 138.84 (C3), 132.13 (C2), 132.05 (C8a or C10a), 128.5 (C8a or C10a), 124.90 (C6), 12.14 (C12), 12.6). (C5) 117.64 (C5), 112.76 (C8), 108.33 (C11 ). HPLC-MS (ES+): CH3CN / H2O 20:95 to 95:20, t r = 0.98 (92%); MS (ES + ,m / z), 185 [M+H] + .

[0288] 6-(Furan-3-yl)imidazo[1 ,2-a]pyridine (35)

[0289] The synthesis of 35 was carried out using general procedure B2. Using 6-iodoimidazo[1,2-a]pyridine (0.25 mmol), furan-3-boronic acid (0.32 mmol) in 1,4-dioxane / H2O (3:1). Obtaining a brown oil with a yield of 58%.

[0290] 1 H NMR (500 MHz, CDCI3) 5 8.11 (dd, J = 7.0, 1.0 Hz, 1 H, 12), 7.81 (s, 1 H, 5), 7.71 (m, 1 H, 10), 7.63 (d, J = 1 .3 Hz, 1 H, 2), 7.56 (m, 1 H, 3), 7.52 (t, J = 1 .7 Hz, 1 H, 7), 6.94 (dd, J = 7.0, 1.7 Hz, 1 H, 11), 6.78 - 6.77 (m, 1 H, 8). 13 C NMR (126 MHz, CDCI3) 5 146.1 (010a), 144.7 (C2), 139.8 (C5), 134.2 (C3), 126 (C8a), 125.7 (C12), 125.2 (C6), 113.3 (C7), 112.7 (C10), 111.9 (C11), 108.8 (C8). HPLC-MS (ES+): CH3CN / H2O 2:50 to 50:2, t r = 1.67 (98%); MS (ES + ,m / z), 185 [M+H] + .

[0291] 7-(Thiophen-3-yl)imidazo[1,2-a]pyridine (36)

[0292] The synthesis of 36 was carried out using general procedure B2. Using 7-bromoimidazo[1,2-a]pyridine (0.30 mmol), thiophene-3-boronic acid (0.39 mmol) in 1,4-dioxane / H2O (3:1). Obtaining a dark red solid with a yield of 87%. 1 H NMR (500 MHz, CDCI3) 5 8.12 (d, J = 7.1 Hz, 1 H, 5), 7.82 (s, 1 H, 8), 7.65 (s, 1 H), 7.58 - 7.54 (m, 2H), 7.45 - 7.42 (m, 2H), 7.07 (d, J = 7.1 Hz, 1H, 6). 13 C NMR (126 MHz, CDCI3) 5 146.0, 140.1, 134.4, 132.3, 127.1, 125.9 (C5), 125.8, 121.6, 113.7 (C8), 112.3, 112.1 (C6). HPLC-MS (ES+): CH3CN / H2O 2:50 to 50:2, t r = 4.41 (99%); MS (ES + ,m / z), 200 [M+H] + .

[0293] 6-(Thiophen-3-yl)imidazo[1,2-a]pyridine (37)

[0294] The synthesis of 37 was carried out using general procedure B2. Using 6-iodoimidazo[1,2-a]pyridine (0.25 mmol), thiophene-3-boronic acid (0.32 mmol) in 1,4-dioxane / H2O (3:1). Obtaining a greyish brown solid with a yield of 82%.

[0295] 1 H NMR (500 MHz, CDCI3) or 8.16 (s, 1 H), 7.47 - 7.43 (m, 4H), 7.30 - 7.23 (m, 1 H), 7.15 (s, 1 H), 7.08 (s, 1 H). 13 C NMR (126 MHz, CDCI3) or 144.7, 138.2, 134.1, 132.2, 127.2, 125.8, 125.0, 122.5, 120.9, 117.9, 112.9. HPLC-MS (ES+): CH3CN / H2O 5:95 to 95:5, t r = 4.21 (99%); MS (ES + ,m / z), 200 [M+H] + .

[0296] 7-(Pyridin-4-yl)imidazo[1,2-a]pyridine (38)

[0297] The synthesis of 38 was carried out using general procedure B2. Using 7-bromoimidazo[1,2-a]pyridine (0.41 mmol), pyridine-4-boronic acid (0.52 mmol) in 1,4-dioxane / H2O (3:1). Obtaining a light brown solid with a yield of 61 %.

[0298] 1 H NMR (500 MHz, MeOD4) or 8.65 (d, J = 6.4 Hz, 2H, 10), 8.59 (d, J = 7.1 Hz, 1 H, 5), 7.99 (s, 1 H, 8), 7.95 (s, 1 H, 3), 7.86 - 7.83 (m, 2H, 11), 7.69 (s, 1 H, 2), 7.37 (dd, J = 7.2, 1.8 Hz, 1 H, 6). 13 C NMR (126 MHz, MeOD4) 5 150.9 (C10), 148.0 (C11 a), 146.4 (C8a), 136.1 (C7), 134.7(C2), 128.6 (C5), 122.8 (C11), 115.3 (C8), 114.9 (C3), 112.6 (C6). HPLC-MS (ES+): CH3CN / H2O 2:95 to 95:2, f r = 0.96 (97%); MS (ES + ,m / z), 196 [M+H] + .

[0299] 6-(Pyridin-4-yl)imidazo[1,2-a]pyridine (39)

[0300] The synthesis of 20 was performed employing the general procedure B2. Using 6-¡odoimidazo[1 ,2-a]pyridine (0.33 mmol), pihdinyl-4-boronic acid (0.42 mmol) in 1 ,4-dioxane / H2O (3:1 ). Obtaining a purple solid with a yield of 70%.

[0301] 1 H NMR (500 MHz, MeOD4) 5 9.03 - 9.01 (m, 1 H, 5), 8.63 (dd, J = 4.7, 1.6 Hz, 2H, 10), 7.98 (s, 1 H, 3), 7.79 (dd, J = 4.7, 2.0 Hz, 2H, 11), 7.74 (dd, J = 9.4, 1.8 Hz, 1 H, 7), 7.69 (d, J = 9.4 Hz, 1 H, 8), 7.65 (d, J = 1.4 Hz, 1 H, 2). 13 C NMR (126 MHz, MeOD4) 5 150.8(C10), 146.9(C11a), 146.0(C8a), 134.2(C8), 126.9(C5), 125.9(C7), 124.9(C6), 122.8(C11 ), 117.9(C2), 125.9(C5), 124.9(C6), 146.9(C11a), 146.0(C8a), 134.2(C8), 126.9(C5), 125.9(C7), 124.9(C6). 115.4 (C3). HPLC-MS (ES+): CH3CN / H2O 2:95 to 95:2, t r = 0.71 (95%); MS (ES + ,m / z), 196 [M+H] + . . . .

[0302] 7-(Dibenzothiophen-3-yl)imidazo[1 ,2-a]pyridine (40)

[0303] The synthesis of 40 was carried out employing the general B2 procedure. Using 7-bromoimidazo[1 ,2-a]pyridine (0.41 mmol), dibenzothiophene-4-boronic acid (0.52 mmol) in 1 ,4-dioxane / H2O (3:1 ). Obtaining an orange solid with a yield of 90%.

[0304] 1 H NMR (500 MHz, CDCI3) or 8.25 (dd, J = 7.0, 0.5 Hz, 1 H, 5), 8.21 - 8.19 (m, 2H), 8.02 (d, J = 0.6 Hz, 1 H), 7.86 - 7.84 (d, J = 0.6 Hz, 1 H), 7.86 - 7.84 (d, 1 H, 1 H, 7). Hz, 1 H), 7.67 - 7.66 (m, 1 H), 7.60 - 7.60 - 7.57 (m, 1 H), 7.55 (dd, J = 7.4, 1 .4 Hz, 1 H), 7.49 - 7.47 (m, 2H), 7.2 (dd, 2, 7.8 Hz = 1.8 Hz). 1 H, 6). 13 C NMR (126 MHz, CDCI3) 5 145.91 (C8a), 139.73, 138.66, 137.30, 136.96, 135.95, 134.92 (C7), 132.52, 128.93, 14, 17.17 126.12, 125.63 (C5), 124.98, 123.08, 121 .63, 117.01 , 113.59 (C6), 112.80. HPLC-MS (ES+): CH3CN / H2O 15:95 to 95:15, t r = 4.50 (96%); MS (ES + ,m / z), 301 [M+H] + .

[0305] 6-(Dibenzothiophene-3-yl)imidazo[1 ,2-a]pyridine (41

[0306] The synthesis of 41 was carried out using general procedure B2. Using 6-iodoimidazo[1,2-a]pyridine (0.33 mmol), dibenzothiophene-4-boronic acid (0.42 mmol) in 1,4-dioxane / H2O (3:1). Obtaining a light yellow solid with a yield of 69%.

[0307] 1 H NMR (500 MHz, CDCI3) 5 8.50 (p, J = 1 .3 Hz, 1 H), 8.23 ​​- 8.19 (m, 2H), 7.87 - 7.84 (m, 1 H), 7.78 (d, J = 9.4 Hz, 1 H), 7.73 (s, 1 H), 7.68 (s, 1 H), 7.61 - 7.53 (m, 2H), 7.51 - 7.48 (m, 3H). 13 C NMR (126 MHz, CDCI3) 5 144.80, 139.20, 138.80, 136.51, 135.65, 134.25, 132.71, 132.13, 127.14, 126.94, 126.08, 125.77, 125.27, 124.69, 124.54, 122.71, 121.88, 121.17, 117.93, 112.94. HPLC-MS (ES+): CH3CN / H2O 30:95 to 95:30, t r = 1 .17 (94%); MS (ES + ,m / z), 301 [M+H] + .

[0308] Synthesis 5-(7-(Benzofuran-2-yl)-3-imidazo[1,2-a]pyridin)-1H-indole-2-carboxylic acid ethyl ester, (42) 7-(Benzofuran-2-yl)imidazo[1,2-a]pyridine (0.21 mmol) and ethyl 5-bromo-1-indole-2-carboxylate (0.28 mmol) are dissolved in DMF (6 mL) in a microwave tube under a stream of nitrogen. Pd(OAc)2 (10 mmol) is added. After 2 hours under microwave irradiation at 165 °C, a concentrated KOH solution (1 mL) was added to the reaction mixture. After 1 hour at room temperature, H2O was added and the reaction mixture was extracted with AcOEt. The organic phases were dried over anhydrous MgSC, filtered and the solvent was evaporated under reduced pressure. The reaction crude was purified in a chromatographic column using a mixture of Hexane / AcOEt (1:4) as eluent to obtain the corresponding product (42) as a yellow solid with a yield of 33%.

[0309] 1H NMR (500 MHz, CDCI3) ó 9.38 (s, 1 H, 15) 8.36 (d, J = 7.2 Hz, 1 H, 5), 8.18 (s, 1 H, 11), 7.89 (s, 1 H), 7.77 (s, 1 H), 7.62 - 7.59 (m, 2H), 7.56 (d, J = 8.2 Hz, 1 H), 7.51 (dd, J = 8.5, 1 .7 Hz, 1 H), 7.35 - 7.30 (m, 2H, 17), 7.27 - 7.23 (m, 2H, 6), 7.11 (s, 1 H), 4.45 (q, J = 7.1 Hz, 2H, 23), 1.45 (t, J = 7.1 Hz, 3H, 24). 13 C NMR (126 MHz, CDCI3) ó 162.0, 155.2, 154.0, 145.9, 136.7, 133.7, 129.1 , 128.9, 128.0, 127.1 , 126.3, 126.0, 125.2, 123.5 (C5), 123.4, 122.5, 121.6, 121.3, 113.2 (C11 ), 111.5, 109.8 (C6), 109.6, 108.8 (C17), 103.2, 61.2 (C23), 14.3 (C24). HPLC-MS (ES+): CH3CN / H2O 40:95 to 95:40, t r = 1.10 (91%); MS (ES + ,m / z), 422 [M+H] + .

[0310] B. EVALUATION OF THE ACTIVITY INHIBITING THE QUINASE TGFp-IR (ALK5)

[0311] The following chemically synthesized compounds (Table 1) were tested for their in vitro inhibitory activity by determining their phosphorylation capacity of the Alk5 kinase (TGFpRI), following the instructions of Roth et al. (2010) (Roth GJ, Heckel A, Brandl T, Grauert M, Hoerer S, Kley JT, et al. Design, Synthesis, and Evaluation of Indolinones as Inhibitors of the Transforming Growth Factor p Receptor I (TGFpRI). J Med Chem.2010;53(20):7287-95; https: / / doi,org / 10,1021p 100812a).

[0312] Table 1. Initial list of compounds analyzed

[0313] For this purpose, the commercial recombinant Alk5 protein (Abeam, ref. ab105908) was used, as well as the commercial Kinase-Glo® Luminiscent kinase assay platform (Promega, ref. TB372), which determines the adenosine triphosphate (ATP) not consumed in the phosphorylation reaction by its conjugation to luciferin in a reaction catalyzed by the luciferase enzyme in the presence of Mg. 2+ The observed luminescence is inversely proportional to kinase activity. The compound GW788388 Hydrate (Sigma-Aldrich ref. SML0116), widely used in this type of assay, was used as an inhibition control.

[0314] The phosphorylation reaction assay was initially developed using serial substrate dilutions (1:8 was estimated as the best) and different ATP concentrations, with 100 pM being considered the ideal concentration in this case. The recombinant kinase concentration was also determined by performing assays with serial dilutions of the kinase (from 20 ng to 0.62 ng), with 3 ng being determined as the ideal concentration per well (final volume 100 pL).

[0315] Once the optimal reaction conditions were determined, the chemically synthesized compounds were tested. Initially, they were dissolved in dimethyl sulfoxide (DMSO) at a concentration of 1 mM. From this stock solution, dilutions were made in kinase buffer (Tris-HCl pH 7.540 mM; MgCl220 mM; Bovine serum albumin (BSA) 0.1 mg / mL) of 10 pM, titrating to concentrations of 5 and 10 pM. The reactions were carried out in a total volume of 50 pL in Microtiter® Microlite™ 1+ multiwell plastic plates (96 wells) (Thermo Scientific, ref. 7571), which allow their use to determine luminescence in luminometers. The reaction included:

[0316] Inhibitors (10pM) .5 pL

[0317] ATP (1mM) . 5 pL

[0318] Alk5 kinase (10 ng / uL)..3 pL

[0319] Buffer 37 pL

[0320] Incubation was 2h at room temperature with shaking and darkness following the instructions of the commercial system.

[0321] After this time, 50 pL of commercial substrate (diluted 1:8) was added, left to stir for 10 min at room temperature and the luminescence was read on a Luminoskan Ascent instrument reader (Thermo Scientific, Waltham, USA).

[0322] All reactions were performed in duplicate.

[0323] C. TOXICITY STUDIES OF CHEMICAL COMPOUNDS SYNTHESIZED IN CULTURED CELLS

[0324] The first study conducted was to investigate whether these compounds were toxic to cultured human cells. Their effect on macrophages and intestinal epithelial cells was analyzed.

[0325] C.1. Cytotoxicity assay (MTT).

[0326] To quantify the percentage of cells that remained viable in each of the experiments, THP-1-XBIue™-CD14 macrophages (InvivoGen 8 to 13 passages), derived from THP-1 human monocytes, and stably expressing the gene for the enzyme inducible alkaline phosphatase by the NF-kB and AP-1 promoter, were evaluated.

[0327] The dye MTT (3-(4,5-dimethylthiazol-2-yl)-2,5 diphenyltetratozoliumbromide) (Biotium) was used. This assay is based on the cleavage of the tetrazolium salt MTT (yellow) to form formazan crystals (purple), produced by metabolically active cells. The formazan is solubilized with DMSO and its concentration is determined by spectrophotometry; the optical density is proportional to the number of viable cells. First, THP1-XBIue™-CD14 monocytes (InvivoGen, 8-13 passages) were differentiated to a macrophage-like phenotype using phorbol-12-methylstate-13-acetate (PMA, Sigma Aldrich), which at 100 ng / mL has been shown to be the most effective alternative for obtaining THP-1 macrophages, with similarity to peripheral blood mononuclear macrophages (PBMCs) (Starr et al., 2018). For this purpose, cells were seeded in 96-well plates at a density of 3 x 10 5cells / mL in RPMI 1640 medium (Gibco) supplemented with 10% FBS, penicillin, streptomycin (both at a concentration of 100 pg / mL, Sigma-Aldrich) and PMA (100 ng / mL) (Sigma-Aldrich), and were grown at 37 °C, 5% CO2 for 48 h. Subsequently, the medium was replaced by an equivalent one, but without PMA supplementation, and this time the cells were grown at 37 °C, 5% CO2 for another 24 h. Next, the cells were washed twice with PBS (10 mM, pH 7.4), and 100 pL of RPMI 1640 supplemented with penicillin and streptomycin (100 pg / mL) but without FBS was added. were seeded in 96-well plates under conditions identical to those used in the anti-inflammation assays. Cells were then washed with PBS and treated with different compounds: 1) PBS (10 pL) (positive growth control, (vehicle)); 2) different concentrations of the chemical compounds produced (1 pM, 5 pM, and 10 pM).The plates were incubated for 24 hours at 37°C, 5% CO2, then 10 pL of MTT was added to each well and the plate was incubated for 4 hours at 37°C, 5% CO2. The formazan crystals formed were dissolved in 180 pL of DMSO and the plate was incubated for 20 minutes with shaking at room temperature. The absorbance was measured in each well at 595 nm (probe) and 655 nm (background), following the manufacturer's instructions, in an ¡Mark™ Microplate Absorbance Reader (Bio-Rad). Samples were analyzed in triplicate. The percentage of viable cells was calculated using the following formula:

[0328] % Viability = (A595 - Aess Problem sample) / (A595 - Aess Positive control) x 100

[0329] D. DETERMINATION OF ANTI-INFLAMMATORY ACTIVITY IN MACROPHAGES IN CULTURE OF THE SYNTHESIZED COMPOUNDS

[0330] D. 1. Anti-inflammatory effect test

[0331] To study the anti-inflammatory activity of the synthesized chemical compounds, we used the transcription factor NF-kB as a biomarker, which is involved in inflammatory processes. For this purpose, we used the THP-1-XBIue™-CD14 cell line (InvivoGen), derived from human THP-1 monocytes, which stably expresses the gene for the enzyme inducible alkaline phosphatase by the NF-kB and AP-1 promoter. In addition, these cells stably over-express CD14, a specific receptor for Toll-like macrophages (TLR), such as TLR4. Thus, by stimulating this CD14 receptor (for example, with bacterial lipopolysaccharide, LPS, InvivoGen), THP1-XBIue™-CD14 cells activate these transcription factors and consequently the synthesis and secretion of alkaline phosphatase, which is easily detected by adding the commercial substrate QUANTI-Blue™ (InvivoGen), which turns blue / purple in the presence of the secreted phosphatase.

[0332] THP1-XBIue™-CD14 cells (InvivoGen, passages 8–13) were processed as above, differentiating them into macrophages in the presence of PMA (Sigma Aldrich). Cells were then washed twice with PBS (10 mM, pH 7.4), and 100 pL of RPMI 1640 supplemented with penicillin and streptomycin (100 pg / mL) but without FBS was added. Subsequently, cultured cells were treated with: 1) 10 pL PBS (negative control); 2) GW788388 (positive control); and 5 pM concentrations of the synthesized compounds. After 1 h of incubation, lipopolysaccharide (LPS) from the bacterium Escherichia coli (InvivoGen) was added at a final concentration of 300 ng / mL, and the cultures were maintained at 37 °C, 5% CO2 for 24 h.

[0333] After this time, 20 pL of supernatant from the culture medium was removed from each well and transferred to a new plate, and 180 pL of QUANTI-Blue™ reagent was added. After 5 h of incubation at 37 °C, the absorbance at 655 nm in the plate wells was measured using an ¡Mark™ Microplate Absorbance Reader (Bio-Rad). Samples were analyzed in quadruplicate.

[0334] On the other hand, the same process was carried out in parallel, without adding the stimulant LPS to the plates, to verify the possible intrinsic inflammatory activity of these compounds.

[0335] Eight replicates of the biological tests were performed.

[0336] E. STUDIES OF CELLULAR VIABILITY AND TOXICITY OF CHEMICAL COMPOUNDS 31 (PS1801) AND 26 (PS1906)

[0337] To study whether the compounds in Examples 26 and 31 were toxic to cultured human cells, their effects on macrophages and intestinal epithelial cells were analyzed. E.1. Quantification of cell viability.

[0338] To quantify the percentage of viable cells in each experiment, THP-1-XBIue™-CD14 macrophages (InvivoGen, passages 8 to 13), derived from human THP-1 monocytes and stably expressing the NF-kB and AP-1 promoter-inducible alkaline phosphatase gene, were evaluated. Caco-2 human intestinal epithelial cells (ATCC®, HTB-37™, passages 10 to 12), were also evaluated. Trypan blue (Gibco) was used as an exclusion stain. This dye penetrates cells with damaged membranes (a sign of cell death) and stains their cytoplasm dark blue. For this purpose, the cell suspensions tested were centrifuged at 500 xg (5 min at 24 °C), the cell pellets were resuspended in 0.1 mL of PBS, and then 10 pL were mixed with 10 pL of trypan blue (0.4%) filtered through 0.22 pm.The percentage of live cells was determined in 10 pL of the above mixture using a chamber and a Countess™ cell counting device (Invitrogen). Eight replicates of the biological assays were performed.

[0339] E.2. Cytotoxicity assay (MTT).

[0340] In this second cytotoxicity evaluation on THP-1-XBIue-CD14 and Caco-2, the previously described technique was used with the MTT dye (3-(4,5-dimethylthiazol-2-yl)-2,5 diphenyltetratozoliumbromide) (Biotium).

[0341] For this purpose, both cell types were seeded in 96-well plates under identical conditions to those used in the anti-inflammation assays. Cells were then washed with PBS and treated with different compounds: 1) PBS (10 pL) (positive growth control, (vehicle)); 2) 20% DMSO (negative control, since high doses of this compound are cytotoxic); 3) different concentrations of compounds PS1801 and PS1906 (1, 5, and 10 pM). The plates were incubated for 24 hours at 37°C, 5% CO2, and then 10 pL of MTT was added to each well, and the plate was incubated for 4 hours at 37°C, 5% CO2. The formazan crystals formed were dissolved in 180 pL of DMSO and the plate was incubated for 20 minutes with shaking at room temperature. The absorbance was measured in each well at 595 nm (problem) and 655 nm (background), following the manufacturer's instructions, in a ¡Mark™ Microplate Absorbance Reader (Bio-Rad).The samples were analyzed in triplicate.

[0342] Eight replicates of the biological assays were performed. The percentage of viable cells was also calculated using the following formula:

[0343] % Viability = (A595 - Aess Problem sample) / (A595 - Aess Positive control) x 100

[0344] F. DETERMINATION OF ANTI-INFLAMMATORY ACTIVITY IN CULTURED MACROPHAGES OF COMPOUNDS PS1801 AND PS1906

[0345] F. 1. Anti-inflammatory effect test

[0346] For the study of the anti-inflammatory activity of the chemical compounds PS1801 and PS1906 we have followed the previously described protocol using the transcription factor NF-kB as a biomarker, using the THP-1-XBIue™-CD14 cell line (InvivoGen).

[0347] Analogously to previously described assays, THP1-XBIue™-CD14 monocytes (InvivoGen, 8 to 13 passages) were differentiated to a macrophage-like phenotype using PMA (Sigma Aldrich) and seeded in 96-well plates at a density of 3 x 10 5 cells / mL in RPMI 1640 medium (Gibco) supplemented with 10% FBS, penicillin, streptomycin (both at a concentration of 100 pg / mL, Sigma-Aldrich) and PMA (100 ng / mL) (Sigma-Aldrich), and were grown at 37 °C, 5% CO2 for 48 h. Subsequently, the medium was replaced by an equivalent one, but without PMA supplementation, and this time the cells were grown at 37 °C, 5% CO2 for another 24 h. Next, the cells were washed twice with PBS (10 mM, pH 7.4), and 100 pL of RPMI 1640 supplemented with penicillin and streptomycin (100 pg / mL) but without FBS was added.

[0348] Subsequently, the cultured cells were treated with: 1) 10 pL PBS (negative control); 2) GW788388 (positive control); and 3) 5 pM of the compounds PS1801 and PS1906. After 1 h of incubation, lipopolysaccharide (LPS) from the bacterium Escherichia coli (InvivoGen) was added at a final concentration of 300 ng / mL, and the cultures were maintained at 37 °C, 5% CO2 for 24 h.

[0349] After this time, 20 pL of supernatant from the culture medium was removed from each well and transferred to a new plate, and 180 pL of QUANTI-Blue™ reagent was added. After 5 h of incubation at 37 °C, the absorbance at 655 nm in the plate wells was measured using an ¡Mark™ Microplate Absorbance Reader (Bio-Rad). Samples were analyzed in quadruplicate.

[0350] On the other hand, the same process was performed in parallel, without adding the stimulant LPS to the plates, to test for the potential intrinsic inflammatory activity of these compounds. Eight replicates of the biological assays were performed.

[0351] G. STATISTICAL ANALYSIS

[0352] The experimental results obtained were subjected to analysis of variance, ANOVA, and for those parameters that did not show a normal population distribution, the non-parametric Kruskal-Wallis test was applied. The GraphPad Prism version 7.0 program for Windows (GraphPad Software, La Jolla California USA, www.graphpad.com) was used, *P value < 0.05, **P value < 0.01, ***P value < 0.001.

[0353] H. EVALUATION OF IN VIVO ANTI-INFLAMMATORY ACTIVITY. MURIDAL MODEL OF ACUTE LUNG INJURY (ALI)

[0354] In order to evaluate the potential anti-inflammatory effect of the PS1906 molecule in an in vivo model, we selected the ALI model induced by tracheal instillation of lipopolysaccharide (LPS), widely described in the literature and previously performed by members of the research group (Clemente-Moragón et al., 2020). This murine model is a model of inflammation or acute lung damage that is associated with a long-term fibrotic period, so it can be used for the study of both inflammatory lung diseases and pulmonary fibrotic processes.

[0355] H. 1. Animals

[0356] For this model, mice of the C57BL / 6J-OlaHsd strain were chosen. Adult mice were maintained under pathogen-free conditions in a temperature-controlled room with a 12-h light / dark cycle. Diet and water were available ad libitum. Mice were anesthetized intravenously with an anesthetic cocktail containing atropine sulfate (1 mg / kg; B. Braun, 1 mg / mL), xylazine hydrochloride (20 mg / kg; Rompun® Bayer, 20 mg / mL), and ketamine (100 mg / kg; Anesketin Dechra, 100 mg / mL). All experimental and other scientific procedures involving animals were in accordance with EU Directive 2010 / 63EU and Recommendation 2007 / 526 / EC, as promulgated into Spanish law under Royal Decree 53 / 2013. The animal protocols were approved by the local ethics committees and the Animal Protection Department of the Autonomous Community of Madrid. H.2. Selection of doses and administration of treatments.

[0357] For the selection of the doses to be administered, in vitro studies were taken into account, taking 10 pM as the maximum effective (non-toxic) concentration. Assuming an approximate blood volume of 2 mL for a mouse weighing about 30 g, and taking into account a 50% loss due to distribution, metabolism or secretion of the products, we calculated dose 1 (D1) and selected dose 2 (D2), double the first. Thus, taking into account the respective molecular weights, the corresponding doses for product PS1906 were 156 pg / kg (D1) and 312 pg / kg (D2). Physiological saline was used as a diluent to prepare the different doses. All doses were prepared to administer the same volume to the mouse. The doses were administered intravenously with the animal properly anesthetized just before the induction of pulmonary inflammation.

[0358] H.3. Induction of the acute pulmonary inflammation model.

[0359] With the animal properly anesthetized, the trachea was exposed, a catheter (Introcan Safety 22G, Braun) was inserted, and mice received an intratracheal injection of sterile lipopolysaccharide (LPS) (L2262, Sigma) at a high dose of 10 mg / kg in 25 pl of 1X PBS, followed by 200 L of air to ensure deposition in each lung. Healthy control mice received an intratracheal injection of 25 pl of PBS. After intratracheal administration, the wounds were closed, and the mice were allowed to recover with free access to food and water.

[0360] H.4. Evaluation of inflammatory infiltrate in bronchoalveolar lavage.

[0361] After 24 h, the animals were sacrificed and the lungs were lavaged with 1.5 mL of cold PBS through a tracheal catheter (Introcan Safety 22G, Braun), and a total of 1 mL of bronchoalveolar lavage fluid was collected from each mouse for detection of neutrophils and lymphocytes by flow cytometry. Detection was performed by size and complexity, as well as positive staining for the Ly6G marker (neutrophils) and CD4 marker (lymphocytes), as well as total cell number using a FACS Canto-3L flow cytometer equipped with DIVA software (BD Biosciences). Data were analyzed with FlowJo software (Ashland). H.5. Processing of the lungs for histopathological evaluation

[0362] At the end of the protocol and after euthanasia of the animals, the lung was removed, separating the right lobe from the left. The right lobe was fixed in 4% paraformaldehyde (PFA) for 24 h at 4°C, and the left lobe was snap-frozen in liquid nitrogen for subsequent protein isolation and immunoblot assays. The PFA-fixed right lobes were placed in 70% alcohol at 4°C and cut transversely into two portions. For histopathological scoring of acute lung injury (ALI score), both transverse portions were dehydrated through an ethanol series, cleared in xylene, embedded in paraffin wax, cut into 5 µm sections, mounted on Superfrost Plus slides (Thermo Fisher Scientific), and counterstained with hematoxylin and eosin solution.Tissues were processed at the Histopathology Unit of the CNIC, and all slides were scanned using a NanoZoomer-2.0-RS digital slide scanner (C110730®, Hamamatsu, Japan) and visualized using NanoZoomer Digital Pathology software (Hamamatsu). ALI was scored with a semiquantitative system, using a 0 to 4 scale that combined assessments of inflammatory cell infiltration of the airspace and vessel wall, alveolar congestion, hemorrhage, alveolar wall thickness, and hyaline membrane formation. A score of 0 indicates no lesions, 1 indicates mild lesions, 2 indicates moderate lesions, 3 indicates severe lesions, and 4 indicates very severe lesions.

[0363] H.6. Statistical analysis

[0364] Data were log-transformed to better appreciate the differences between groups. They are presented as mean ± standard deviation and were analyzed using Prism v7 software (Graphpad, Inc.). Comparisons between groups were performed using one-way ANOVA. p values ​​were adjusted using Dunnet's multiple comparisons method. *** p < 0.0001 vs control; * p < 0.05, # # p < 0.01 , # # p < 0.0o1 vs LPS group for n= 4-7 mice.

[0365] RESULTS

[0366] RESULTS OF ALK5 KINASE ACTIVITY INHIBITION ASSAYS The assays performed showed that several compounds exhibited Alk5 kinase inhibitory activity, compared to compound GW788388, which was around 25% inhibition. The compounds exhibited the inhibitory effect shown in Table 2.

[0367] Table 2. Formula and reference of compounds with Alk5 kinase inhibitory activity in vitro.

[0368] The % kinase activity reduction values ​​refer to the 100% reduction in activity of the inhibition control compound GW788388 Hydrate (Sigma-Aldrich ref. SML0116).

[0369] Figure 1 shows the results obtained with the different compounds, where it is observed that compound PS1906 (16) was one of those that showed the greatest inhibitory effect on the Alk5 tyrosine kinase.

[0370] RESULTS OF IN VITRO CYTOTOXICITY TESTS IN CELL CULTURES

[0371] As shown in Figure 2, treatments with the compounds used at 1 pM did not have cytotoxic effects on THP-1 macrophages (Figure 2), as they did not decrease cell viability. Compound 16 was found to be toxic to cells at concentrations of 5 pM and 10 pM, while the other compounds were not. Compound GW788388 (control), a known inhibitor of Alk5 kinase activity and lacking cytotoxic activity, was also tested (Figure 2).

[0372] Eight replicates of the biological assays were performed. VIABILITY AND CYTOTOXICITY RESULTS OF PS1801 COMPOUNDS

[0373] And PS1906

[0374] As observed in Figure 3, treatments with compounds PS1801 and PS1906 did not have cytotoxic effects on Caco-2 epithelial cells (Figure 3A) or THP-1 macrophages (Figure 3B) at all concentrations used, as they did not decrease cell viability. These results confirm previous data obtained in THP-1 macrophages and demonstrate the absence of toxicity in intestinal epithelial cells. DMSO was used as a toxic substance for the cells (positive control), as well as the compound GW788388 (control), a known inhibitor of Alk5 kinase activity and lacking cytotoxic activity.

[0375] It was decided to continue the tests using a concentration of 5 pM as it decreased cell viability the least in both cell types.

[0376] 9.5. Compounds PS1801 and PS1906 exhibit anti-inflammatory activity in human THP-1-XBLUE™ CD14 macrophages.

[0377] To study the anti-inflammatory activity of compounds PS1801 and PS1906, we used the transcription factor NF-kB involved in inflammation as a biomarker. THP-1-XBIue™-CD14 macrophages were stimulated with LPS (Figure 4), a promoter of the expression of this transcription factor, which binds to the TLR4 receptor, overexpressed in these macrophages. A concentration of 5 pM of the compounds resulted in a significant inhibition of LPS-dependent NF-kB production (p < 0.001). These results confirmed those obtained previously.

[0378] In turn, the activity of these vesicles was verified in a control environment, without LPS stimulation (Figure 5), revealing that by themselves they do not produce the expression of NF-kB in vitro. These results indicate that the compounds PS1906 and PS1801 are useful to reduce the inflammation derived from the effectors dependent on this transcriptional factor, with special interest when used as treatment in a previous environment of inflammation. 9.6. RESULTS OBTAINED IN VIVO IN A MURIDAL MODEL OF INFLAMMATION AND ACUTE LUNG INJURY

[0379] To study the in vivo anti-inflammatory activity, we chose a model of inflammation and acute lung injury (ALI) used to study inflammatory lung diseases such as Acute Respiratory Distress Syndrome. This model is evaluated using a score extracted from the histopathological analysis of fixed lung sections stained with Hematoxylin and Eosin. Panel A of Figure 6 shows representative images of the lung from each group where macroscopic differences can be observed. The quantification of the ALI score (shown in panel B of Fig. 6) indicates a positive effect for the product PS1906. Flow cytometry analysis of bronchoalveolar lavage showed a dose-dependent anti-inflammatory effect of the compound PS1906, both in neutrophils (panel C of Fig. 6) and lymphocytes (panel D of Fig.6; although these results do not show statistical significance probably due to the low participation of this cell type in early stages of acute lung damage).

[0380] REFERENCES

[0381] Clemente-Moragón A, Gómez M, Villena-Gutiérrez R, Lalama DV, García-Prieto J, Martínez F, Sánchez-Cabo F, Fuster V, Oliver E, Ibáñez B. Metoprolol exerts a non-class effect against ischaemia-reperfusion injury by abrogating exacerbated inflammation. Eur Heart J. 2020 Dec 7;41 (46):4425-4440. https: / / doi.Org / 10.1093 / eurheartj / ehaa733

Claims

CLAIMS 1. A compound of formula I: or a pharmaceutically acceptable salt thereof, wherein: R 2 represents H; aryl, where the aryl group is unsubstituted, or is substituted with alkyl groups of 1 to 5 carbon atoms, or is substituted with haloalkyl, or is substituted with an alkoxy group of 1 to 5 carbon atoms, R 3 represents H; halogen; haloalkyl; alkoxycarbonyl of 2 to 5 carbon atoms; amino; aryl or heteroaryl, where the aryl and heteroaryl groups are unsubstituted or substituted by alkyl groups of 1 to 5 carbon atoms, or by alkoxycarbonyl of 2 to 5 carbon atoms, R 5represents H; alkenyl of 2 to 10 carbon atoms; alkoxycarbonyl of 2 to 5 carbon atoms; nitro; carboxyl; alkyl of 1 to 5 carbon atoms unsubstituted or substituted by one or more hydroxy groups; an N-(3-methylene-2-oxoindolin-5-yl)-3-(piperidin-1-yl)propanamide group); or carbaldehyde, R 6represents a hydrogen atom (H); unsubstituted alkyl of 1 to 5 carbon atoms; an alkyl group of 1 to 5 carbon atoms substituted by one or more hydroxy groups; an alkoxy group of 1 to 5 carbon atoms; halogen selected from F, Cl, I; alkoxycarbonyl (-O-(C=O)-R) where R has 1 to 3 carbon atoms; nitro; unsubstituted or substituted alkenyl of 3 to 10 carbon atoms; alkenyl of 2 carbon atoms substituted by phenyl (styryl); aryl, where the aryl group is unsubstituted or substituted by one or more hydroxyl groups, or substituted by one or more methoxyl groups; heteroaryl; or heteroaryl where the heteroaryl group is selected from dibenzothiophenyl, a group of formula II, a group of formula III: II III where D, B, E, G independently represent N, CH or CR, where R is unsubstituted alkyl of one to three carbon atoms, unsubstituted aryl or unsubstituted cycloalkyl, Z represents CH or N And it represents CH or N W represents O or S or NH, R 7 represents a hydrogen atom (H); an unsubstituted halide group or an aryl group substituted by one or more hydroxy groups, or substituted by one or more methoxy groups; halogen; alkenyl of 3 to 10 carbon atoms, unsubstituted or substituted by an aryl group; alkenyl of 2 carbon atoms substituted by phenyl (styryl); alkoxycarbonyl of 2 to 5 carbon atoms; a heteroaryl group; or heteroaryl wherein the heteroaryl group is selected from benzothiophenyl, benzofuranyl, benzopyrrolyl; dibenzothiophenyl, a group of formula II and a group of formula III as defined above, - in which: - at least 3 of the R substituents 2 , R 3 , R 5 , R 6 and R 7 are simultaneously H, and the carbon 8 position of the imidazo[1,2a]pyridine structure bears no substituents, and - when R 5is carbaldehyde, at least one of R 2 , R 3 , R 6 or R 7 is different from H, - when R 6 is aryl or substituted aryl, R 3 is not substituted aryl - when R 3 represents an amino group, R 6 does not represent hydrogen - when R 2 represents unsubstituted aryl, or aryl substituted with a methyl or methoxy group, at least one of the substituents R 2 , R 3 , R 5 , R 6 and R 7 it's not H - at least one of the R groups 3 , R 5 , R 6 , R 7 is different from H, when R 2 is unsubstituted aryl, or is an aryl substituted with halogen, methyl, or methoxy.

2. A compound according to claim 1, wherein R 2 represents aryl substituted with a CF3 group or with an alkoxy group of 1 to 5 carbon atoms; and preferably, in addition, R 3and R 5 are simultaneously H.

3. A compound according to claim 1, wherein: - R 2 represents aryl substituted with alkoxy of 1 to 5 carbon atoms, and - simultaneously R 6 is: - an alkyl of one to 5 carbon atoms, or - an aryl group substituted with a hydroxyl, and preferably, in addition, R 3 and R 5 are simultaneously H.

4. A compound according to claim 1, wherein R 2 represents a group selected from alkoxy-substituted aryl of 1 to 5 carbon atoms; and simultaneously R: 6 is - alkyl of one to 5 carbon atoms, or - an aryl group substituted with a hydroxyl; and preferably R3 and R5 are simultaneously H.

5. A compound according to claim 1, wherein R 2represents a phenyl substituted with alkoxy of 1 to 5 carbon atoms or phenyl substituted with trihalomethyl; and - simultaneously R 7 is a heteroaryl group, preferably 2-benzo[b]furyl; and more preferably, R 3 , R 4 , R 5 and R 6 are simultaneously H.

6. A compound according to claim 1, wherein: - R 2 represents aryl substituted with alkoxy of 1 to 5 carbon atoms and R 7 is aryl substituted by hydroxyl or by an alkoxy group of 1 to 5 carbon atoms, or - R 2 represents aryl substituted with alkoxy of 1 to 5 carbon atoms and R 7 represents alkenyl substituted with an aryl group; and preferably, in addition, R 3 and R 5 are simultaneously H.

7. A compound according to claim 1, wherein R 2 represents aryl substituted with alkoxy of 1 to 5 carbon atoms and R 7is aryl substituted by hydroxyl or by an alkoxy group of 1 to 5 carbon atoms or alkenyl substituted by an aryl group; and preferably, in addition, R 3 and R 5 are simultaneously H.

8. A compound according to claim 1, wherein R 2 represents aryl substituted with alkoxy of 1 to 5 carbon atoms, R 3 is H, R 6 is H, alkyl group or aryl group, and R 7 is H or aryl substituted with hydroxyl or with an alkoxy group of 1 to 5 carbon atoms; and preferably, R 3 and R 5 are simultaneously H.

9. A compound according to claim 1, wherein R 3 is an unsubstituted aryl; and preferably, in addition, R 2 , R 5 and R 6 are simultaneously H; and more preferably, also R 2 , R 5 , R 6 and R 7 are simultaneously H.

10. A compound according to claim 1, wherein R3 represents an unsubstituted aromatic heterocycle, or an aromatic heterocycle substituted by an alkoxycarbonyl group of 2 to 5 carbon atoms; and preferably, in addition, R 2 , R 5 and R 6 are simultaneously H; and more preferably, also R 2 , R 5 , R 6 and R 7 are simultaneously H.

11. A compound according to claim 1, wherein R 3 is a group selected from benzofuranyl, benzothiophenyl and indole, unsubstituted or substituted with an alkoxycarbonyl group of 2 to 5 carbon atoms; and preferably, in addition, R 2 , R 5 and R 6 are simultaneously H; and more preferably, also R 2 , R 5 , R 6 and R 7 are simultaneously H.

12. A compound according to claim 1, wherein R 3is a group selected from benzofuranyl, benzothiophenyl and indole, substituted or substituted with an alkoxycarbonyl group of 2 to 5 carbon atoms; and simultaneously, R 7 is a group selected from benzofuranyl, benzothiophenyl and indole; preferably, R 2 , R 5 and R 6 are simultaneously H.

13. A compound according to claim 1, wherein R 5 represents H, ethoxycarbonyl, nitro, carboxyl, hydroxymethyl, carbaldehyde, or ethoxy, and preferably, R 2 , R 3 , R 6 and R 7 are simultaneously H.

14. A compound according to claim 1, wherein R 6 or R 7 represent a fragment II in which D, B, E, G independently represent CH or CR, where R may be unsubstituted alkyl, unsubstituted aryl or unsubstituted cycloalkyl, Z stands for CH and W stands for O.

15. A compound according to claim 1, wherein R 6 or R 7 represents a fragment II in which D, B, E, G independently represent CH, Z represents C and W represents O.

16. A compound according to claim 1, wherein R 6 represents an alkyl group of 1 to 5 carbon atoms or alkoxycarbonyl (-O-(C=O)-R) where R has 1 to 3 carbon atoms, and preferably, in addition, R 2 , R 3 , R 5 and R 7 are simultaneously H.

17. A compound according to claim 1, wherein R 7 represents an unsubstituted aryl group, and preferably, in addition, R 2 , R 3 , R 5 and R 7 are simultaneously H.

18. A compound according to claim 1 selected from: - Midazo[1,2-a]pihd¡n-5-carboxylic acid (2) - ethyl imidazo[1,2-a]pyridine-5-carboxylate (3) - 3-Phenylimidazo[1,2-a]pyridine (4) - Imidazo[1,2-a]pyridin-5-ylmethanol (5) - 2-(4-Methoxyphenyl)-6-methylimidazo[1,2-a]pyridine (8) - 4-(lmidazo[1 ,2-a]pyridin-7-yl)phenol (12) - 4-(2-(4-(T rifluoromethyl)phenyl)imidazo[1 , 2-a]pyrid i n-7-yl)phenol (13) - 4-(2-(4-(T rifluoromethyl)phenyl)imidazo[1 ,2-a]pyrid i n-6-yl)phenol (15) - 4-(2-(4-Methoxyphenyl)imidazo[1,2-a]pyridin-7-yl)phenol (16) - 4-(2-(4-Methoxyphenyl)imidazo[1,2-a]pyridin-6-yl)phenol (17) - (E)-7-Estyrylimidazo[1,2-a]pyridine (19) - (E)-2-(4-Methoxyphenyl)-7-estyrylimidazo[1,2-a]pyridine (20) - 7-(3,4-Dimethoxyphenyl)imidazo[1,2-a]pyridine (21) - 6-lodo-2-(4-(trifluoromethyl)phenyl)imidazo[1,2-a]pyridine (25) - 7-(Benzofuran-2-yl)imidazo[1,2-a]pyridine. (26) PS1906 - 4-(lmidazo[1 ,2-a]pyridin-6-yl)phenol (27) - (E)-6-Estyrylimidazo[1,2-a]pyridine (28) - 6-(Benzofuran-2-yl)imidazo[1,2-a]pyridine (29) - 6-(3,4-Dimethoxyphenyl)imidazo[1,2-a]pyridine (30) - Ethyl 5-(imidazo[1,2-a]pyridin-3-yl)-1 H-indol-2-carboxylate (31) - 7-(Benzofuran-3-yl)imidazo[1,2-a]pyridine (32) - 6-(Benzofuran-3-yl)imidazo[1,2-a]pyridine (33) - 7-(Furan-3-yl)imidazo[1,2-a]pyridine (34) - 6-(Furan-3-yl)imidazo[1,2-a]pyridine (35) - 7-(Thiophen-3-yl)imidazo[1,2-a]pyridine (36) - 6-(Thiophen-3-yl)imidazo[1,2-a]pyridine (37) - 7-(Pyridin-4-yl)imidazo[1 ,2-a]pyridine (38) - 6-(Pyridin-4-yl)imidazo[1 ,2-a]pyridine (39) - 7-(Dibenzothiophen-3-yl)imidazo[1,2-a]pyridine (40) - 6-(Dibenzothiophen-3-yl)imidazo[1,2-a]pyridine (41) - 5-(7-(Benzofuran-2-yl)-3-imidazo[1 ,2-a]pyridin)-1 H-indol-2-carboxylate de ethyl, (42) - 2-(4-Methoxyphenyl)-6-iodo-imidazo[1,2-a]pyridine, - N-(3-(imidazo[1,2-a]pyridin-5-ylmethyl0n)-2-oxoindolin-5-yl)-3-(piperidin-1-yl)propanamide.

19. A compound according to claim 1, wherein the compound of formula I is selected from 20. A compound of formula I, defined in any one of claims 1 to 17 for use as a medicament.

21. The compound of formula I, according to the preceding claim, for use in the treatment of an inflammatory disease in a subject.

22. The compound of formula I, according to the preceding claim, wherein the inflammatory disease is an inflammatory lung disease selected from acute respiratory distress syndrome, chronic obstructive pulmonary disease, pulmonary fibrosis, pulmonary hypertension, pulmonary inflammation, preferably acute respiratory distress syndrome and pulmonary fibrosis.

23. The compound of formula I, according to any one of the preceding claims 20 to 22, wherein the compound is ethyl 5-(imidazo[1,2-a]pyridin-3-yl)-1H-indole-2-carboxylate.

24. The compound of formula I, according to any one of the preceding claims 20 to 22, wherein the compound is 7-(benzofuran-2-yl)imidazo[1,2-a]pyridine.

25. The compound of formula I, according to any one of the preceding claims 20 to 22, in a concentration comprised between 15 mg / kg and 10 pg / kg, even more preferably between 1 mg / kg and 50 pg / kg, and even more preferably between 800 pg / kg and 80 pg / kg.

26. A pharmaceutical composition comprising one or more compounds of formula I, defined in any one of claims 1 to 19 and one or more additional active compounds, and / or one or more pharmaceutically acceptable carriers, adjuvants or vehicles.

27. The pharmaceutical composition according to the preceding claim, wherein the one or more pharmaceutically acceptable carriers are selected from a disintegrant, surfactant, binder, lubricant and combinations of the foregoing.

28. The pharmaceutical composition according to one of the preceding claims 26 to 27, wherein the one or more additional active compounds are selected from steroids, corticosteroids and non-steroidal anti-inflammatory drugs.

29. The pharmaceutical composition according to one of the preceding claims 26 to 28, wherein the one or more additional active compounds is one or more compounds of formula I defined in any one of claims 1 to 18.

30. A pharmaceutical composition, defined in any one of the preceding claims 25 to 29 for use as a medicament 31. A pharmaceutical composition according to the preceding claim for use in the treatment of an inflammatory disease, preferably an inflammatory lung disease selected from acute respiratory distress syndrome, chronic obstructive pulmonary disease, pulmonary fibrosis, pulmonary hypertension, pulmonary inflammation, preferably acute respiratory distress syndrome and pulmonary fibrosis.