EP4247388A1 - Inositol hexakisphosphate analogues for treatment of calcification associated kidney diseases - Google Patents
Inositol hexakisphosphate analogues for treatment of calcification associated kidney diseasesInfo
- Publication number
- EP4247388A1 EP4247388A1 EP21811371.0A EP21811371A EP4247388A1 EP 4247388 A1 EP4247388 A1 EP 4247388A1 EP 21811371 A EP21811371 A EP 21811371A EP 4247388 A1 EP4247388 A1 EP 4247388A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- oligo
- alkyl ether
- phosphate
- pharmaceutically acceptable
- ether compound
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07F—ACYCLIC, CARBOCYCLIC OR HETEROCYCLIC COMPOUNDS CONTAINING ELEMENTS OTHER THAN CARBON, HYDROGEN, HALOGEN, OXYGEN, NITROGEN, SULFUR, SELENIUM OR TELLURIUM
- C07F9/00—Compounds containing elements of Groups 5 or 15 of the Periodic Table
- C07F9/02—Phosphorus compounds
- C07F9/06—Phosphorus compounds without P—C bonds
- C07F9/08—Esters of oxyacids of phosphorus
- C07F9/09—Esters of phosphoric acids
- C07F9/117—Esters of phosphoric acids with cycloaliphatic alcohols
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/70—Carbohydrates; Sugars; Derivatives thereof
- A61K31/7028—Compounds having saccharide radicals attached to non-saccharide compounds by glycosidic linkages
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/66—Phosphorus compounds
- A61K31/661—Phosphorus acids or esters thereof not having P—C bonds, e.g. fosfosal, dichlorvos, malathion or mevinphos
- A61K31/6615—Compounds having two or more esterified phosphorus acid groups, e.g. inositol triphosphate, phytic acid
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P13/00—Drugs for disorders of the urinary system
- A61P13/12—Drugs for disorders of the urinary system of the kidneys
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P3/00—Drugs for disorders of the metabolism
- A61P3/12—Drugs for disorders of the metabolism for electrolyte homeostasis
Definitions
- the present invention relates to compounds and compositions for use in treatment of conditions associated with calcification of tissue, particularly kidney tissue, caused by deposition of, or exposure to, calcium phosphate (CaP) and other calcium precipitates.
- CaP calcium phosphate
- W02013045107 (A1) first discloses the concept of using inositol polyphosphate polyalkylether derivatives as pharmaceutical agents. Initially conceived as an agent of considerable potential to neutralize C. difficile toxin in the colon lumen, subsequent analysis found that the compounds are highly effective in reducing calcification when applied systemically, as first disclosed in WO2017098047 (A1), US10624909 (B2) and US20200247837 (A1).
- W02020058321 discloses further compounds based on inositol polyphosphate scaffolds with improved pharmacological properties.
- the objective of the present invention is to provide further advantageous applications of inositol polyphosphate polyalkylether derivatives. This objective is attained by the subject-matter of the independent claims of the present specification.
- the invention provides an inositol polyphosphate oligo alkyl ether compound, or its pharmaceutically acceptable salt, for use in treatment or prevention of a disease associated with formation of calcium salt precipitate or calcium salt crystals.
- a disease associated with formation of calcium salt precipitate or calcium salt crystals is chronic kidney disease associated with calcium salt precipitation, particularly with the formation of precipitates comprised of calcium phosphate and/or oxalate.
- renal fibrosis particularly when associated with calcification, or exposure to calcium phosphate or calcium oxalate precipitates, of renal tissue, renal inflammation, particularly when associated with calcification or exposure to calcium phosphate or calcium oxalate precipitates of renal tissue, nephritis, particularly interstitial nephritis, glomerulonephritis, phosphate-induced renal fibrosis, phosphate-induced chronic kidney disease, chronic kidney disease associated with hyperphosphatemia, progression of chronic kidney disease, phosphate toxicity, hyperphosphaturia, hyperphosphatemia, and/or hyper-FGF23-emia.
- an inositol polyphosphate oligo alkyl ether compound, or its pharmaceutically acceptable salt is provided for use in treatment or prevention of a disease associated with formation of calcium salt precipitate or calcium salt crystals, the disease being selected from vascular calcification, coronary artery disease, vascular stiffening, valvular calcification, nephrocalcinosis, calcinosis cutis, kidney stones, and chondrocalcinosis.
- references to “about” a value or parameter herein includes (and describes) variations that are directed to that value or parameter per se. For example, description referring to “about X” includes description of “X.”
- oligo-alkylether relates to oligo-ethylene glycol and close chemical relatives such as oligo-propylene glycol and oligo-glycerol.
- oligo signifies that more than one, particularly from 2 to 20, more particularly from 2 to 12 monomers (-CH2-CH2-O-) in the case of oligo-ethylene glycol, (-CH(CHs)-CH2-O-) in the case of oligo-propylene glycol) are present.
- inositol polyphosphate relates to cyclohexane-hexol (inositol, cyclohexane-1 ,2,3,4,5,6-hexol) wherein each OH is substituted by a phosphate ester moiety unless the OH is substituted by an oligo-alkylether moiety according to the preceding definition.
- the inositol scaffold is myoinositol ((1 R,2S,3R,4R,5S,6S)-cyclohexane-1 ,2,3,4,5,6-hexol).
- inositol polyphosphate oligo-alkylether compound in the context of the present specification relates to a compound comprising one or several inositol polyphosphate moieties as defined above, and at least one oligoalkylether.
- calcification in the context of the present specification relates to the formation of calcium precipitates in the affected tissue, particularly renal tissue.
- a first aspect of the invention relates to an inositol polyphosphate oligo alkyl ether compound, or its pharmaceutically acceptable salt, for use in treatment or prevention of a disease associated with formation of calcium salt precipitate or calcium salt crystals.
- the disease is chronic kidney disease associated with calcium salt precipitation, particularly with the formation of precipitates comprised of calcium phosphate and/or oxalate.
- pathophysiologic mechanisms of the diseases mentioned here involve, as a first step, precipitation of calcium phosphate matter, which subsequently grows, adheres to cells (and perhaps grows further once adhered to cells).
- the compounds and compositions provided herein apparently stop new precipitates from forming/growing but it also stop existing precipitates from adhering to the cells, both of which confer a protective effect. There is therefore a dual mode of action.
- the treatment according to the invention is capable of preventing or ameliorating any condition in which deposition of calcium phosphate, oxalate and mixed calcium phosphate-oxalate crystals play a role.
- Calcium phosphate is found in different crystal forms in pathologic deposits in the human body; these include hydroxyapatite (hydroxylapatite, HA, Caio(P04)e(OH)2), brushite (CaHPC>4*2 H2O), monetite, and various amorphous calcium phosphate salts.
- Calcium oxalate in pure form is found as a mono- (whewellite), di- (weddellite) and tri-hydrate, and often associated with other deposits, mainly phosphate salts.
- Renal fibrosis or “tubulointerstitial fibrosis” associated with formation of, and/or tissue exposure to, calcium salt crystals, refers to a thickening and scarring of kidney tissue, due to unsuccessful wound-healing after chronic injury due to exposure to calcium phosphate, calcium oxalate or mixed CaP/CaOx precipitates. During this process fibrotic matrix deposition continues unchecked leading to glomerulosclerosis, tubular atrophy and interstitial fibrosis. Patients suffering from said disease can experience intense abdominal pain (with bleeding or haemorrhaging), swelling and discoloration in one or both legs, and ultimately progress to chronic kidney disease.
- Renal inflammation or “nephritis” is defined as a complex network of interactions between renal parenchymal cells and resident immune cells, such as macrophages and dendritic cells, coupled with recruitment of circulating monocytes, lymphocytes, and neutrophils. Once stimulated, these cells activate specialized structures such as Toll-like receptor and Nod-like receptor (NLR). By detecting danger-associated molecules, these receptors can set in motion major innate immunity pathways such as nuclear factor KB (NF-KB) and NLRP3 inflammasome, causing metabolic reprogramming and phenotype changes of immune and parenchymal cells and triggering the secretion of a number of inflammatory mediators that can cause irreversible tissue damage and functional loss. In CKD, a chronic inflammation leads to a progressively decreasing glomerular filtration rate (GFR) that can ultimately result in kidney failure (end stage renal disease, ESRD).
- GFR glomerular filtration rate
- the treatment according to the invention is expected to ameliorate or prevent the condition.
- the examples shown herein demonstrate that calcium phosphate deposition/exposure leads to upregulation of inflammation and fibrosis markers in the kidneys, therefore any disease that consists of inflammation and fibrosis of the kidneys should benefit from treatment that inhibits the formation of deposits.
- any disease that consists of inflammation and fibrosis of the kidneys should benefit from treatment that inhibits the formation of deposits.
- “Glomerulonephritis” refers to a group of diseases that are characterized by inflammatory changes in glomerular capillaries. Patients suffering from said group of diseases can experience proteinuria, impaired renal function in some cases paired with fluid retention, hypertension and oedema. Glomerulonephritis can occur as a primarily renal disease as well as indicate a systematic disease process. When associated with formation of, and/or tissue exposure to, calcium salt crystals, glomerulonephritis is expected to benefit from treatment with the compounds described herein.
- Interstitial nephritis refers to inflammation of the renal interstitium which can be caused by unbalanced levels of calcium. Symptoms include increased urine output, hematuria, changes in mental status, swelling. This condition, if associated associated with formation of, and/or tissue exposure to, calcium salt crystals, is expected to benefit from treatment with the compounds described herein.
- Phosphate-induced renal fibrosis may be associated with a range of calcium and phosphate concentrations that lead to precipitation in the renal tubules, see the data presented in Fig 2: i.e. calcium > 2 or 5 mmol/L and phosphate > 5 or 7 mmol/L.
- phosphate there can be elevated phosphate in renal tubular fluid (leading to its precipitation with calcium) even when detectable plasma phosphate levels are normal (i.e. in the absence of hyperphosphatemia).
- Elevated plasma phosphate is a terminal consequence of end-stage renal disease that occurs when kidney function is below a 20% threshold.
- Phosphate-induced chronic kidney disease Phosphate-induced CKD can occur even if plasma phosphate levels are normal (i.e. in earlier stage CKD patients).
- Reference values can be calcium > 2 or 5 mmol/L and phosphate > 5 or 7 mmol/L in the renal tubules.
- Chronic kidney disease associated with hyperphosphatemia refers to hyperphosphatemia occurring in progressive CKD, due to the increasing loss of GFR. This leads to the blocking of tubular phosphate reabsorption and therefore increased phosphate retention, in other words, less phosphate clearance, impairing phosphate homeostasis (Sharon).
- a useful reference value to characterize patients who are expected to benefit from the treatment according to the invention can be a plasma phosphate level of > 1.46 mmol/Ls.
- “Progression of chronic kidney disease” refers to five stages, ranging from the first stage (mild damage, eGFR 90 or greater) to the fifth (complete kidney failure, eGFR less than 15). Current guidelines determine the critical GFR for CKD to be less than 60 mL/min per 1.73m 2 over a period of 3 months.
- Phosphate toxicity refers to a dysregulated renal phosphate excretion and reabsorption, impairing phosphate homeostasis, which can cause severe damage of kidney tissue. (Razzaque, Clin Sci (Lond). 2011 Feb; 120(3): 91-97). To the extent that this condition causes tissue damage associated with formation of, and/or tissue exposure to and/or deposition of crystals which can avoided by the treatment according to the invention, the treatment is indicated for patient suffering from the condition.
- “Hyperphosphaturia” or “phosphaturia” refers to a high level of phosphate in urine. To the extent that this condition causes tissue damage associated with formation of, and/or tissue exposure to and/or deposition of crystals which can avoided by the treatment according to the invention, the treatment is indicated for patient suffering from the condition.
- “Hyperphosphatemia” refers to an elevated (> 4.5 mg/dL; > 1.46 mmol/L) phosphate level in blood. To the extent that this condition causes tissue damage associated with formation of, and/or tissue exposure to and deposition of crystals which can avoided by the treatment according to the invention, the treatment is indicated for patient suffering from the condition.
- “Hyper-FGF23-emia” refers to an increased fractional phosphate excretion, paired with a decrease of serum phosphate levels, due to elevated fibroblast growth factor (FGF)-23 levels.
- “Vascular calcification” refers to the pathological deposition of minerals in the vascular system often observed in patients suffering from CDK or diabetes. The elevated calcium and/or phosphate levels can be the result of metabolic dysregulation caused by diabetes, dyslipidemia, oxidative stress, uremia, and hyperphosphatemia, which lead to osteoblast-like cell formation, appearance of calcified deposits and stiffening in the vessel wall.
- Coronary artery disease or “artheroslerotic heart disease” refers to an accumulation of plaque in damaged inner layers of the coronary artery. Factors such as inflammatory cells, lipoproteins and calcium attach to the plaque leading to further stenosis. Progression of this disease can ultimately lead to myocardial infarction or stroke.
- Vascular stiffening refers to stiffening of the arterial wall due to calcification. Vascular stiffening consists of lower elasticity of the vasculature leading to an increased pulse wave pressure.
- Valve calcification refers to an active dysregulation of normal homeostatic processes and hemodynamic changes, such as ECM degradation, fibrosis, lipid accumulation, and neo-angiogenesis of the valve tissue, concurrent with calcification of the valve, in particular the aortic and mitral valves.
- Nephrocalcinosis refers to the deposition of calcium salts in the renal parenchyma, particularly in the medulla (medullary nephrocalcinosis) or cortex (cortical nephrocalcinosis) of the kidney.
- Calcinosis cutis refers to the deposition of calcium phosphate precipitates within the skin, particularly within the extremities. If the solubility point of calcium and phosphate are exceeded, precipitation of calcium salts and deposition as amorphous hydroxyapatite occur.
- Kidney stones “Kidney stones”, “renal calculi”, “nephrolithiasis”, and “urolithiasis” refer to a mineral deposit in renal tissue, which is due to the accumulation and therefore supersaturation of urine (hypercalcuria).
- Chondrocalcinosis refers to the accumulation of calcium phosphate in joints.
- Particular conditions the treatment of which is expected to benefit, based on the examples described in here, from administration of the compounds described in here further include aortic valve stenosis, peripheral artery disease and brain calcification.
- the data shown in example 1 confirm the utility of the compounds disclosed herein as effective in reducing or inhibiting calcium phosphate crystal formation, in the prevention and treatment of idiopathic calcium nephrolithiasis / idiopathic calcium kidney stones, particularly those mainly consisting of calcium phosphate, calcium oxalate, or mixtures thereof.
- the inositol polyphosphate oligo alkyl ether compound, or its pharmaceutically acceptable salt, for use in treatment or prevention of the diseases laid out above is described by a general formula I, wherein one or two or three X are oligo-ethylene glycol and the remaining X are OPOs 2 '.
- both mono- and bis-oligo-ethylene glycol derivatives of varying chain length confer inhibition of calcium precipitate formation in a cellular assay.
- the inositol scaffold can have any stereochemistry. The inventors worked preferably with myo-inositol.
- the buffers used in the screens comprise mainly sodium (408mmol/L), and traces of potassium (0,26mmol/L) and magnesium (4 mmol/L).
- two of the inositol substituents X shown in the above formula I are oligo-ethylene glycol and the remaining four X are OPOs 2 '.
- Examples for compounds that can be advantageously used in treatment according to the invention include general formulas 1-1 , I-2, I-3 and I-4, wherein in each case, X is phosphate and R 1 is an oligo-ethylene glycol as set forth herein:
- the scaffold is myo-inositol and the oligo-ethylene glycol substituents are on position 4 and 6, with the rest of the substituents being phosphate.
- the oligo-ethylene glycol substituents are O-(CH 2 - CH 2 O) 2 -CH 3 .
- one of the inositol substituents X shown in the above formula I is oligo-ethylene glycol and the remaining five X are OPO 3 2 '.
- the scaffold is myo-inositol and the oligo-ethylene glycol substituent is on position 4 or 6, particularly on 6, with the rest of the substituents being phosphate.
- the oligo-ethylene glycol substituent is O-(CH 2 -CH 2 O) 2 -CH 3 .
- three of the inositol substituents X shown in the above formula I are oligo-ethylene glycol and the remaining three X are OPO 3 2 '.
- Examples thereof include general formulas 1-5 and 1-6, wherein in each case, X is phosphate and R 1 is an oligoethylene glycol as set forth herein:
- the oligo-ethylene glycol substituent (or substituents) of the inositol polyphosphate oligo alkyl ether compound, or its pharmaceutically acceptable salt, provided for use according to the invention herein is described by a formula O-(CH 2 -CH 2 -O) n CH 3 , with n being selected from an integer between 2 and 20, particularly n being 2 to 12. Different parameters of the compounds’ physiological activity, pharmacological parameters and aspects of manufacture will influence which value of n is optimal.
- the oligo-ethylene glycol substituent (or substituents) of the inositol polyphosphate oligo alkyl ether compound, or its pharmaceutically acceptable salt, provided for use according to the invention herein is described by a formula O-(CH 2 - CH2-O) n CH3, wherein n is 2.
- Table 1 of the examples shows the particular advantage of OEG2-IP5 and (OEG2)2-IP4, both of which are characterized by n being 2.
- the inositol polyphosphate oligo alkyl ether compound, or its pharmaceutically acceptable salt, for use in treatment or prevention of the diseases laid out above is described by a general formula II, wherein each X is OPOs 2 ' and L is -(O-CH2-CH2)m- O- with m having a value between 5 and 15, particularly between 6 and 12.
- n is 7. In one particular embodiment, m is 9. In one particular embodiment, m is 10.
- m is 8.
- ll-a also referred to as OEG4-(IP5)2 herein
- I l-b also referred to as OEGS-(IP5)2 herein
- the binuclear inositol polyphosphate oligo-alkyl ether compound of general formula II, or its pharmaceutically acceptable salt, for use according to the invention is characterized by both inositol moieties being myo-inositol.
- any of the inositol polyphosphate oligo-alkyl ether compounds, or its pharmaceutically acceptable salt are provided for use in treatment or prevention of a disease associated with the formation of calcium phosphate salt or other solid precipitate in the body, particularly in renal tissue.
- the administration of compounds having two oligo-ethylene glycol moieties attached to a myo-inositol tetrakisphosphate scaffold (I a) is of particular advantage in treatment or prevention of diseases as set forth herein that are associated with precipitation of calcium phosphate solid matter, and in prevention or treatment of mixed phosphate-oxalate calcium precipitates, or precipitates that mainly contain oxalate but originate from calcium phosphate nuclei, as evidenced by the data provided in example 1 and as exemplified by the growth of calcium oxalate kidney stones on calcium phosphate-based Randall’s plaque.
- the bipegylated compounds such as (OEG2)2-IP4 also have a protective effect in the context of mixed precipitates (CaP+CaOx).
- any specifically mentioned drug compound mentioned herein may be present as a pharmaceutically acceptable salt of said drug.
- Pharmaceutically acceptable salts comprise the ionized drug and an oppositely charged counterion.
- Nonlimiting examples of pharmaceutically acceptable cationic salt forms include aluminium, benzathine, calcium, ethylene diamine, lysine, magnesium, meglumine, potassium, procaine, sodium, tromethamine and zinc.
- the invention further encompasses, as an additional aspect, the use of an inositol polyphosphate oligo alkyl ether compound, or its pharmaceutically acceptable salt, as specified in detail above, for use in a method of manufacture of a medicament for the treatment or prevention of a disease associated with formation of calcium salt precipitate or calcium salt crystals, specifically in a disease selected from renal fibrosis, particularly when associated with calcification of renal tissue, renal inflammation, particularly when associated with calcification of renal tissue, nephritis, particularly interstitial nephritis, glomerulonephritis, phosphate- induced renal fibrosis, phosphate-induced chronic kidney disease, chronic kidney disease associated with hyperphosphatemia, progression of chronic kidney disease, phosphate toxicity, hyperphosphaturia, hyperphosphatemia, and/or hyper-FGF23-emia.
- a disease selected from renal fibrosis particularly when associated with calcification of renal tissue, renal inflammation, particularly when associated with calcification of renal tissue, neph
- the compounds of the invention are similarly provided for use in a method of manufacture of a medicament for the treatment or prevention of a disease associated with formation of calcium salt precipitate or calcium salt crystals, the disease being selected from vascular calcification, coronary artery disease, vascular stiffening, valvular calcification, nephrocalcinosis, calcinosis cutis, kidney stones, and chondrocalcinosis.
- the invention encompasses methods of treatment of a patient having been diagnosed with a disease associated with formation of calcium salt precipitate or calcium salt crystals, specifically in a disease selected from renal fibrosis, particularly when associated with calcification of renal tissue, renal inflammation, particularly when associated with calcification of renal tissue, nephritis, particularly interstitial nephritis, glomerulonephritis, phosphate- induced renal fibrosis, phosphate-induced chronic kidney disease, chronic kidney disease associated with hyperphosphatemia, progression of chronic kidney disease, phosphate toxicity, hyperphosphaturia, hyperphosphatemia, and/or hyper-FGF23-emia.
- This method entails administering to the patient an effective amount of an inositol polyphosphate oligo alkyl ether compound, or its pharmaceutically acceptable salt, as specified in detail herein.
- compositions comprising a compound of the present invention, or a pharmaceutically acceptable salt thereof, and a pharmaceutically acceptable carrier.
- the composition comprises at least two pharmaceutically acceptable carriers, such as those described herein.
- the compound of the present invention is typically formulated into pharmaceutical dosage forms to provide an easily controllable dosage of the drug and to give the patient an elegant and easily handleable product.
- the pharmaceutical composition for use according to the invention is formulated for administration by intradermal or subcutaneous injection.
- the dosage regimen for the compounds of the present invention will vary depending upon known factors, such as the pharmacodynamic characteristics of the particular agent and its mode and route of administration; the species, age, sex, health, medical condition, and weight of the recipient; the nature and extent of the symptoms; the kind of concurrent treatment; the frequency of treatment; the route of administration, the renal and hepatic function of the patient, and the effect desired.
- the compounds of the invention may be administered in a single daily dose, or the total daily dosage may be administered in divided doses of two, three, or four times daily.
- the pharmaceutical composition for use according to the present invention can be subjected to conventional pharmaceutical operations such as sterilization and/or can contain conventional inert diluents or buffering agents, as well as adjuvants, such as preservatives, stabilizers, surfactants and buffers, etc. They may be produced by standard processes, for instance by conventional mixing, dissolving or lyophilizing processes. Many such procedures and methods for preparing pharmaceutical compositions are known in the art, see for example L. Lachman et al. The Theory and Practice of Industrial Pharmacy, 4th Ed, 2013 (ISBN 8123922892).
- Fig. 1 shows an overview of the developed calcification profiling platform.
- A Outline of the workflow.
- B Overview of the output of the analytical pipeline.
- Example images of brightfield (column 1), CellMask (column 2), Hoechst (column 4) and calcein (column 6) stainings and two zoomed-in regions of interests (ROI) of RPTEC cells treated with 5/7 mM Ca/P are shown.
- CellMask and Hoechst channel images were used for single cell segmentation.
- Hoechst local maxima indicated in dark blue, column 4) and the CellMask binary image served as seeds and input image, respectively, for the watershed algorithm.
- Fig. 2 shows effects of increasing concentrations of Ca/P on RPTEC in vitro.
- A Heatmap and hierarchial clustering of the Ca/P treatment conditions and extracted image features.
- B Selected single features describing cellular changes upon increasing Ca/P concentrations are depicted. Total cell count, dead cell count, single cell area and single cell solidity, a measure of cell compactness, are shown.
- C Selected single features describing changes in the CaP deposition and membrane pattern upon increasing Ca/P concentrations are depicted.
- Fig. 3 shows an overview of IP6 analogues tested in solution.
- Fig. 4 shows inhibitory properties of (OEG2)2-IP4 on Ca/P induced changes of RPTEC in vitro.
- A Heatmap and hierarchical clustering of extracted image features.
- B Selected single features describing cellular changes upon increasing (OEG2)2-IP4 concentrations are depicted. Total cell count, dead cell count, single cell area and single cell solidity, a measure of cell compactness, are shown.
- C Selected single features describing changes in the CaP deposition and membrane pattern upon increasing (OEG2)2-IP4 concentrations are depicted.
- Fig. 5 shows Ca/P-induced transcriptomic changes of renal epithelial cells include inflammatory pathways, ECM proteins, cell proliferation and tissue homeostasis processes and are prevented by (OEG2)2-IP4 in vitro.
- C Overrepresentation analysis of downregulated gene transcripts in the Ca/P vs. medium group.
- Fig. 6 shows (OEG2)2-IP4 reduces high phosphate induced kidney damage in vivo.
- C57BL/6 male were placed on either regular diet containing 0.35% inorganic phosphate (NP) or high phosphate diet containing 2.0% inorganic phosphate (HP). These mice were subcutaneously injected with either (OEG2)2-IP4 (100 mg/kg) or vehicle (distilled water) three times a week and then sacrificed at 20 weeks of age to harvest their blood and kidneys.
- NP inorganic phosphate
- HP high phosphate diet containing 2.0% inorganic phosphate
- Fig. 7 shows inhibition of CaP precipitation with OEG2-IP5, OEGn-IP5, (OEG2)2-IP4, (OEGI I) 2 -IP4 and OEG 8 -(IP5) 2 .
- Fig. 8 shows inhibition of CaP aggregation with OEG2-IP5, OEGn-IP5, (OEG2)2-IP4, (OEGII) 2 -IP4 and OEG 8 -(IP5) 2 .
- Fig. 9 shows in vitro reduction of CaP adhesion and prevention of cell injury by IP6 analogues.
- RPTEC/TERT 1 monolayers at confluence were treated with medium spiked with 7 mM disodium phosphate, 5 mM calcium chloride and compound and were incubated for 24 h.
- the amount of CaP deposits and the extent of cell injury were detected by calcein and EthD staining, respectively. Fluorescence images were quantified using Matlab. Quantification of the area covered with CaP deposition on RPTEC monolayers with (A) OEG 2 -IP5, (B) OEGn-IP5, (C) (OEG 2 ) 2 -IP4, and (D) OEGS-(IP5)2 treatment.
- N 3, mean + SD, one-way ANOVA with Dunnett’s multiple comparison, * p ⁇ 0.05, ** p ⁇ 0.01 , *** p ⁇ 0.001).
- Fig. 10 shows example images of RPTEC treated with 5/7 mM Ca/P and increasing concentrations of (OEG2) 2 -IP4.
- Brightfield, calcein, CellMaskTM and EthD channel images and two zoomed-in regions of interests (ROI) are shown (column 1-4).
- Cell segmentation is shown overlayed with the Hoechst channel image (blue) (column 4).
- Pos.ctrl presents treatment with 5/7 mM Ca/P
- Tab. 1 shows an overview of the efficacy of screened compounds to inhibit CaP precipitation in RTF.
- Tab. 2 shows serum and urinary phosphate and calcium levels measured in the different treatment groups of mice (mean ⁇ SD).
- IP6 analogues were custom synthesized by Chimete Sri (Tortona, Italy). Mass and 1 H-NMR spectra were taken by the provider to confirm the structure and the compounds were used as provided.
- Phytic acid dodecasodium salt was purchased from Biosynth AG (Thai, Switzerland). IP5 and IS6 hexapotassium salt were purchased from Santa Cruz Biotechnology (Dallas, Texas, United States).
- IC6 was purchased from Fluorochem (Hadfield, United Kingdom).
- Calcium Colorimetric Assay kit (MAK022), Bis-Tris, sodium oxalate (NaOx), EthD, Hoechst 33342, magnesium chloride hexahydrate, sodium phosphate dibasic, and calcein were purchased from Sigma-Aldrich (St.Louis, MO, USA). Sodium chloride, sodium sulphate anhydrous and calcium chloride (CaCl2) dihydrate were obtained from Merck (Kenilworth, NJ, USA). Calcium oxalate (CaOx) monohydrate was purchased from abcr (Karlsruhe, Germany). 8-well glass bottom slides (80 827) were purchased from ibidi (Martinsried, Germany).
- RNAiso Plus was obtained from TaKaRa (Kusatsu, Japan). ReverTra Ace qPCR RT Master Mix with gDNA Remover and SYBR Green PCR Master mix were purchased from Toyobo (Osaka, Japan).
- RTF renal tubular fluid
- 0.05 mM oxalate, 0.005 mM sulphate, 408 mM sodium, 424 mM chloride, 0.26 mM potassium, 4 mM magnesium and 0.2 mM citrate in double distilled water was prepared according to a literature report (Fasano, J. M. et al., Kidney Int. 59, 169-178. DOI: 10.1046/j.1523-1755.2001.00477.x, 2001). The solution was filtered with a 0.45-
- RTF Twenty-x final concentration phosphate, 20x final concentration calcium and 10x final concentration compound dilutions were prepared in RTF.
- Assay mixture consisting of 80 % RTF, 10 % compound dilution, 5 % phosphate dilution and 5 % calcium dilution was prepared in Eppendorf tubes as follows.
- RTF (320 pL) was mixed with 20 pL phosphate dilution (final concentration of 9 mM), 40 pL compound dilution and 20 pL calcium dilution (final concentration of 8 mM).
- the assay mixture was vortexed after adding each component and 380 pL of the mixture were immediately added to 8-well glass bottom slides and incubated for
- CaP precipitation was assessed using a Leica DM 6000B microscope (Leica Microsystems, Wetzlar, Germany) in brightfield mode. For quantification 3 wells/condition with 3-4 images/well were imaged with a 40x objective. The total area covered with CaP deposits in percentage of the field of view and the mean size of CaP aggregates were determined.
- RPTEC/TERT 1 human proximal tubule cells were cultured in T75 tissue culture flasks using ProxUp basal medium mixed with ProxUp supplements at 37°C and 5% CO2 according to manufacturer’s recommendations. Cells were used up to passage 30 and regularly tested for Mycoplasma infections. For experiments, RPTEC were cultured in 24-well plates at a seeding density of 150’000 cells/cm 2 . Cell viability assessment and cell counting before seeding was performed using an automated cell counter (BioRad TC 20, Hercules, CA, USA).
- RPTEC were treated with ProxUp basal medium spiked with first, various concentrations of phosphate (final concentration between 1 and 7 mM) and second, calcium (final concentration between 1 and 7 mM), which was directly added to each well.
- ProxUp basal medium was prepared with the selected inhibitor and added to each well. Then, CaP precipitation was induced by direct addition of first, phosphate and second, calcium. Final concentrations of 7 mM phosphate and
- ProxUp basal medium was mixed with calcein (500 nM final concentration), EthD (6 pM final concentration), CellMask stain (5 pg/pL) and Hoechst 33342. Staining mixture was added to RPTEC and cells were incubated for 30 min in the dark at 37°C and 5% CO2. Staining solution was removed, cells were washed with PBS once and ProxUp basal medium was added. Cells were immediately imaged after staining. Images were obtained by epifluorescence microscopy at 37°C, using a Leica CTR6000 microscope. For quantification 3 wells/condition were prepared and 3 images/well were taken. For preliminary adhesion experiments images were taken with a 10x objective, for the imaging assay 20x objective images were taken.
- Multichannel images were saved as individual channel images in 8-bit tiff format.
- Hoechst channel images were thresholded using the triangle threshold. Touching nuclei of the binary image were further segmented using the watershed algorithm with the distance transform of the binary image as input and local maxima thereof as seeds.
- the CellMask channel image was first binarized by adaptive thresholding, using a blocksize of 35, followed by median filtering. Binary erosion was performed to shrink the outlines. A version of watershed algorithm was used to segment the whole image into single cells. To this end, the distance transform of the binary erosion image was used as input image and seeds were set to the local maxima of the Hoechst channel image. While this protocol allowed for an approximation of single cell morphology, further improvements of both analytical and experimental staining procedure would be necessary to achieve more accurate results. Additionally, texture features of calcein and CellMask channel images were extracted. Grey level co-occurrence matrices were calculated using one set offset of 5 pixel and an angle of 90°.
- SSIM structural similarity index matrix
- Single cell, single nuclei and single calcein patch features included shape and, only for calcein and cell, intensity properties and were summarized to median values per image. Properties included median area, extent, eccentricity, perimeter, solidity, major and minor axis length, as well as maximum, minimum and mean intensity per cell or CaP patch.
- RNA samples were cultured as described in the imaging assay and treated with a medium control (Proxllp basal medium containing 1/1 mM Ca/P), 5/7 mM Ca/P, 5/7 mM Ca/P in medium containing 50 pM (OEG2)2-IP4 or 50 pM (OEG2)2-IP4 in medium for 24 h.
- Total RNA was extracted using the RNeasy kit (Quiagen) according to the manufacturer’s instructions. Three wells per sample group were prepared and total RNA extracted of those 3 wells pooled. mRNA was purified and RNAseq library was prepared using the TrueSeq RNA kit (Illumina). Sequencing was performed on a Novaseq 6000 (Illumina).
- RNA sequencing raw data is available on the EMBL Nucleotide Sequence Database (ENA) under the accession number PRJEB38397.
- mice C57BL/6 male mice (12 weeks of age) were placed on either regular diet containing 0.35% inorganic phosphate or high phosphate diet containing 2.0% inorganic phosphate. These mice were subcutaneously injected with either (OEG2)2-IP4 (100 mg/kg) or vehicle (distilled water) three times a week and then sacrificed at 20 weeks of age to harvest their blood and kidneys. Some mice were transferred individually to metabolic cages to collect urine for 3 days before sacrifice. Serum FGF23 levels were measured using intact FGF23 ELISA (Kinos) according to the manufacturers’ protocols. Serum and urine levels of phosphate were measured using Fuji Dri-Chem slides and the analyzer (Dri-Chem NX500V, Fuji, Tokyo, Japan).
- RNAiso Plus (Takara, Osaka, Japan). The lysates were extracted with chloroform. RNA in the aqueous phase was precipitated with isopropanol, washed with 75% ethanol, and dissolved in RNase-free water. Reverse transcription of RNA (0.4 pug) was carried out using ReverTra Ace qPCR RT Master Mix with gDNA Remover (Toyoba, FSQ-301 , Osaka, Japan) according to the manufacturer’s protocol.
- Quantitative RT- PCR reactions were performed using 20 ng of cDNA incubated with 410 nM of each primer and 6 pL of SYBR Green PCR Master mix (Toyoba, Osaka, Japan THUNDERBIRD SYBR qPCR Mix QPS-201) in a total volume of 12 pl.
- the PCR reaction (95°C for 1 minute followed by 45 cycles of 95°C for 10 s, 60°C for 40 s) was carried out on a Roche LC480 system (Basel, Switzerland). Relative mRNA levels were calculated by the comparative threshold cycle method using cyclophilin as an internal control. Primer sequences can be found in STable 6.
- the kidneys not used for RNA extraction were fixed in 10% formalin, processed to make standard paraffin sections, and stained with Piero-Sirius Red to detect collagen as red fibers.
- the collagen volume fraction (the ratio of the Sirius Red-positive area to the total area) was quantified using an image analysis software (IMAGE PRO 9.32, Medica Cybernetics, Rockville, MD, USA) as previously described (Hirano, Y. Kurosu et al., FEBS Open Bio. 10, 894-903. DOI: 10.1002/2211-5463.1284, 2020).
- the cortex and the cortico-medullary junction were evaluated separately. All animal experiments were approved by the institutional animal care and use committee from Jichi Medical University. Data analysis
- Example 1 Image-based profiling of calcification processes
- the inventors developed a cell-based assay that allowed the monitoring of CaP deposition, as well as cellular changes associated with it. Therefore, the inventors utilized monolayers of renal proximal tubular cells (RPTEC) stained with various dyes to quantify calcification and cell morphology changes (Fig. 1). Cells grown in monolayer were exposed to varying ionic conditions found within the renal tubules, e.g. increased calcium and/or phosphate, to trigger the crystallization of CaP and cellular attachment (Fig. 1A). CaP deposits were detected via calcein staining (Fig. 1 B). Calcein has been previously suggested as a calcium staining technique of fixed or unfixed cell samples.
- RPTEC renal proximal tubular cells
- the fluorescent dye binds to calcium and is imaged using fluorescent microscopy. Further, the inventors tested the induction of CaP-induced CaOx crystallization, which is characteristic for idiopathic kidney stone formation. It was observed that by first inducing CaP deposition, followed by addition of high oxalate, CaOx crystallization can be found on CaP deposits. CaOx crystals displayed a strong contrast and a typical twinned structure.
- the inventors first investigated the effects of increasing calcium and phosphate concentrations on cellular CaP deposition and the ensuing cellular changes.
- Features extracted included single cell shape and fluorescence intensity parameters, texture features of both the CellMask and calcein images, and CaP deposit shape and intensity features.
- Hierarchical clustering of experimental conditions and features showed a clear dose-dependent trend (Fig. 2A).
- Low concentrations of calcium and phosphate, such as those of non-spiked cell media (1/1 mM Ca/P) and low spiked one (2/2 mM Ca/P) did not induce cellular changes, while higher levels resulted in intermittent (2/5 mM) and drastic changes (5/7 and 7/7 mM) (Fig. 2B).
- the overlapping areas showed a high intensity of membrane staining, which could indicate clumps of cell debris of injured and detaching cells.
- the correlation texture feature of the CellMask channel image reflecting consistency of an image, showed an increase between 1/1 to 2/5 mM Ca/P spiking, before a drop occurred again at >5/7 mM Ca/P (Fig. 2C).
- the highest value observed for the intermediate Ca/P concentration might be due to the loss of cell outlines when Ca/P is present but no large CaP cluster sites were formed. At high concentrations, CaP sites again caused a decrease in the correlation feature due to CaP-membrane clusters giving high staining intensities.
- IP6 myo-inositol pentakisphosphate
- OEG oligoethylene glycol
- IP5 molecules which in a previous study have been identified as potent inhibitors of renal CaOx crystallization, revealed another interesting trend.
- the effect on crystallization depended on the length of the linker between the IP5 moieties.
- OEG4-(IP5)2 with 4 EG units in the linker, promoted CaP precipitation, while OEGs-(IP5)2 having 8 EG repeating units, had an inhibitory effect.
- Complete inhibition was observed at 30 pM and 50% aggregation inhibition obtained at 1 pM (Table 1 , Fig. 8E, 9E).
- Example 4 OEG2)2-IP4 prevents CaP deposition and cellular changes in vitro
- (OEG2)2-IP4 could prevent both CaP adhesion to the cellular monolayer and -associated cellular changes.
- the compound first confines CaP adhesion and cell injury to localized sites of adhesion, where CaP-membrane clusters are forming, before it completely prevents CaP deposition and cell injury at higher concentrations.
- Example 5 Ca/P induced transcriptomic changes reflect vascular calcification processes in vitro and were prevented by (OEG2)2-IP4
- negative Ctrl samples 2818 differentially expressed genes with a fold change > 1.5 and p ⁇ 0.05 were detected, similar to Ca/P + (OEG2)2-IP4 and (OEG2)2-IP4 vs. positive Ctrl samples (2437 and 2935 differentially expressed genes, respectively).
- extremely limited numbers of differentially expressed genes were detected between Ca/P + (OEG2)2-IP4 vs. negative Ctrl and vs. (OEG2)2-IP4 only (76 and 77, respectively). Thereby the drastic change induced by Ca/P treatment and the prevention thereof by (OEG2)2-IP4 was confirmed.
- the inventors next looked at single gene expression levels, focusing on four groups of genes, namely inflammatory response pathways, extracellular matrix (ECM) proteins, cell cycle and proliferation processes and genes involved in tissue homeostasis.
- ECM extracellular matrix
- Ca/P treatment of cells induced inflammatory response pathways as reported previously for CaOx crystals (Kletzmayr, A. et al., Adv. Sci. 7, 1903337. DOI: 10.1002/advs.201903337, 2020).
- Upregulated genes included interleukin-6 (IL6) and interleukin-32 (IL32), complement C3 (C3), C-X-C motif chemokine ligands (e.g.
- TNF alpha induced protein 3 Fig. 5D
- Putative calcium crystal binding proteins such as the cell surface glycoproteins Osteopontin (SPP1) or CD55, were upregulated with Ca/P addition.
- collagen IV family members COL4A3, COL4A4, COL4A5
- Collagen IV presents the major protein component of the tubular basement membrane.
- e-cadherin an epithelial cell marker
- the wnt signalling pathway was reported to promote osteogenic transdifferentiation of vascular cells and vascular calcification by directly modulating Runx2 gene expression.
- Expression of several wnt signalling pathway genes was deregulated upon Ca/P stimulation of renal epithelial cells, including Wnt family member 7A (WNT7A), sclerostin domain containing 1 (SOSTDC1) and dickkopf WNT signalling pathway inhibitor 1 (DKK1). Additionally, Runx2 expression was upregulated upon Ca/P treatment.
- WNT7A Wnt family member 7A
- SOSTDC1 sclerostin domain containing 1
- DKK1 dickkopf WNT signalling pathway inhibitor 1
- RNA sequencing suggested drastic cellular alterations upon Ca/P stimulation, including a loss of the epithelial phenotype towards a more proliferative state and a change in cellular differentiation similar to vascular calcification processes.
- OEG22-IP4 could largely prevent Ca/P induced changes, likely due to reduced cell-crystal interactions.
- the efficacy of (OEG2)2-IP4 was further tested in a mouse model of high phosphate-induced kidney damage. Based on the previously performed characterization of (OEG2)2-IP4 pharmacokinetics in rats, a plasma concentration of roughly 80 pM after 30 min is anticipated in mice, following a subcutaneous injection of 100 mg/kg.
- the high phosphate diet induces FGF23 expression, compared to a normal phosphate diet, which in turn enhances renal phosphate excretion to keep serum levels within normal limits. This feedback mechanism is also suggested to contribute to high renal phosphate levels in early stage CKD.
- the phosphate diet induced an increase in urinary phosphate excretion from 1.9 to 35.6 mg/day, with no significant difference between the vehicle and treatment group (Table 2).
- (OEG2)2-IP4 significantly reduces fibrosis, as measured by a reduced collagen volume fraction following Piero-Sirius red staining of the kidneys (Fig. 6F).
- the inventors preliminary results suggest a beneficial effect of (OEG2)2-IP4 on phosphate-induced kidney injury in vivo.
- Renal tubules are exposed to a wide variety of metabolites at high concentrations, sometimes causing their precipitation and cellular damage.
- Calcium precipitation in the form of CaP and CaOx is of particular concern, due to the associated kidney calcification, tissue damage and potentially accelerated progression of CKD.
- the inventors first aimed at establishing a simple in vitro imagebased profiling tool that could allow the rapid testing of a multitude of renal perturbations, focusing on calcification conditions, and possible inhibitory molecules.
- the proposed image-based calcification profiling platform allowed for simple and fast alterations of calcification conditions, i.e. ionic conditions triggering different types of calcium crystals.
- the inventors implemented an automated analysis pipeline, quantifying both single cell changes, as well as CaP deposition by fluorescent staining with calcein.
- Advantages of using an image-based profiling approach vs. e.g. RNA sequencing of bulk cells, are the possibility to detect localized changes and its high-throughput adaptability.
- the inventors demonstrated a gradual change in the feature profile of renal epithelial cell monolayers with increasing Ca/P concentration in the culture medium. A loss of the distinct cobblestone-like epithelial phenotype towards an enlarged cell shape was observed.
- RNA sequencing confirmed a loss of the epithelial marker e-cadherin and a more proliferative state of cells stimulated with Ca/P.
- CaP precipitation and/or adhesion were favoured at sites of cell injury and high membrane staining. At those sites, CaP accumulated, causing further injury, cell detachment and formation of CaP-membrane clusters.
- Previous studies support the idea of preferred attachment of CaP to specific crystal-binding proteins, which may be expressed mainly on dedifferentiated or regenerating renal epithelial cells.
- RNA sequencing confirmed an enhanced expression of crystal binding cell surface and ECM proteins, such as osteopontin.
- the enhanced proliferation of Ca/P stimulated cells might favour uncontrolled multi-layer growth and subsequent cell detachment, which could explain the derangements in cell membrane staining and contribute to the CaP cluster formation.
- collagen IV family members the main components of the renal tubule basement membrane, were downregulated upon Ca/P stimulation. Calcification of the basement membrane is considered the first step of CaP plaque formation in kidney stone formers, however to date, the initial calcification process remains unclear. Hence collagen IV downregulation could provide a first insight into CaP plaque formation and suggests the utility of the calcification platform for mimicking pathophysiological processes. Further studies will be needed to clarify whether initial attachment sites are formed by the CaP load, or a certain extent of cell injury precedes and is then amplified by CaP binding. The results suggest the existence of active cellular involvement in the process of kidney calcification, thus supporting the profiling of a wide array of molecules, which could act on multiple steps of the process.
- the inventors investigated the efficacy of a library of IP6 analogues on effect on renal CaP precipitation in solution and cellular adhesion in vitro.
- the chosen lead compound (OEG2)2-IP4 dose-dependently reverted the cell feature profile towards the negative Ctrl profile, inhibiting single cell changes, as well as CaP deposition.
- Protective effects of the compound on high Ca/P induced cellular changes were confirmed by RNA sequencing. This effect might be the result of both inhibition of CaP growth and CaP adhesion.
- the protective effect of the compound translated to efficacy in a mouse model of high phosphate induced kidney damage.
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