@phdthesis{Balk2015, author = {Balk, Anja}, title = {Ionic liquids of active pharmaceutical ingredients: A novel platform addressing solubility challenges of poorly water soluble drugs}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-121925}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2015}, abstract = {Starting in the late 1990s ionic liquids (ILs) gained momentum both in academia as well as industry. ILs are defined as organic salts with a melting point below 100 °C. Active pharmaceutical ingredients (APIs) may be transferred into ILs by creating salts with a bulky counterion with a soft electron density. ILs have demonstrated the potential to tune important pharmaceutical features such as the solubility and the dissolution rate, particularly addressing the challenge of poor water soluble drugs (PWSD). Due to the tunability of ILs, modification of physico-chemical properties of APIs may be envisioned without any modifications of the chemical structure. In the first chapter the potential as well as the limitation of ILs are discussed. The chapter commences with an overview of preparation and characterization of API-ILs. Moreover, examples for pharmaceutical parameters are presented which may be affected by IL formation, including the dissolution rate, kinetic solubility or hygroscopicity as well as biopharmaceutical performance and toxicology. The impact of IL formation on those pharmaceutically relevant features is highlighted, resulting in a blueprint for a novel formulation concept to overcome PWSD challenges without the need for structural changes of the API. Within the second chapter the IL concept is detailed for one specific API - counterion combination. A poorly water soluble acidic API against migraine attacks was transformed into an IL in an effort to minimize the time to maximum plasma concentration (tmax) and optimize the overall bioavailability. These studies were conducted in parallel to a prodrug of the API for comparison of the IL strategy versus a strategy involving modification of the API's structure. A significantly longer duration of API supersaturation and a 700 fold faster dissolution rate of the IL in comparison to the free acid were obtained and the underlying mechanism was elucidated. The transepithelial absorption was determined using Caco-2 cell layers. For the IL about 3 times more substance was transported in comparison to the prodrug when substances were applied as suspensions, despite the higher permeability of the prodrug, as increased solubility of the IL exceeded this effect. Cytotoxicity of the counterion was assessed in hepatic, renal and macrophage cell lines, respectively, and IC50 values were in the upper µM / lower mM range. The outcome of the study suggested the IL approach instrumental for tuning biopharmaceutical properties, without structural changes of the API as required for preparation of prodrugs. Thus the toolbox for formulation strategies of poorly water soluble drugs could be extended by an efficient concept. The third chapter focuses on the effect of different counterions on the physico-chemical properties of an API-IL, in particular to overcome the challenge of poor water solubility. Therefore, the same poorly water soluble acidic API against migraine attacks mentioned above was combined with 36 counterions resulting in ILs and low lattice enthalpy salts (LLES). Depending on the counterions, different dissolution rates, durations of supersaturation and hygroscopicities were obtained and release profiles could be tailored from immediate to sustained release. Besides, in vitro the cytotoxicity of the counterions was assessed in three cell lines. Using molecular descriptors such as the number of hydrophobic atoms, the graph theoretical diameter and the number of positive charges of the counterion, the dissolution rate, supersaturation and hygroscopicity as well as the cytotoxicity of counterions could be adequately modeled, rendering it possible to predict properties of new LLESs. Within the forth chapter different poorly water soluble APIs were combined with the counterion tetrabutylphosphonium (TBP) studying the impact on the pharmaceutical and physical properties of the APIs. TBP-ILs and low lattice enthalpy salts were prepared of the acidic APIs Diclofenac, Ibuprofen, Ketoprofen, Naproxen, Sulfadiazine, Sulfamethoxazole and Tolbutamide. NMR and IR spectroscopy, DSC, XRPD, DVS and dissolution rate measurements, release profiles and saturation concentration measurements were used to characterize the free acids and TBP salts as compared to the corresponding sodium salts. The TBP salts as compared to the free acids displayed lower melting points and glass transition temperatures and up to 1000 times higher dissolution rates. The increase in the dissolution rate directly correlated with the salts' hygroscopicity, an aspect which is critically discussed in terms of pharmaceutical translation challenges. In summary TBP ILs of solid salts were proved instrumental to approach the challenge of poor water solubility. The outcome profiled tailor-made counterions as a powerful formulation strategy to address poor water solubility, hence bioavailability and ultimately therapeutic potential of challenging APIs. In summary, a plethora of ILs and LLESs were prepared by combination of different acidic APIs and counterions. The IL and LLESs concept was compared to conventional salt and prodrug strategies. By choice of the counterion, biopharmaceutical relevant parameters were deliberately modified and release profiles were tuned ranging from immediate to prolonged release. The impact of distinct structural counterion features controlling the dissolution, supersaturation, hygroscopicity and counterion cytotoxicity were identified, correlations were presented and predictive models were built. ILs and LLESs could be proven to be a powerful concept for the formulation of poorly water soluble acidic APIs.}, subject = {Arzneimittel}, language = {en} } @phdthesis{Reggane2019, author = {Reggane, Maude}, title = {Lowering lattice forces of crystalline bases}, doi = {10.25972/OPUS-16380}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-163803}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2019}, abstract = {The number of active pharmaceutical ingredients (APIs) exhibiting a low solubility in aqueous media or a slow dissolution rate kept rising over the past years urging formulation scientists to explore new ways to tackle poor solubility and to enable oral absorption from such compounds. Bioavailability of poorly water-soluble compounds can be improved by increasing the dissolution rate and/or by increasing the gastro intestinal concentration through transient supersaturation. The dissolution rate of the API can be typically modified by the choice of the physical form, the polymorphic form, the powder surface area, and the local pH, while a transient supersaturation can be extended mainly by nucleation or crystallization inhibiting effects. In the present thesis, three strategies were explored to tailor the dissolution rate, the supersaturation and the hydrotropic solubilization of APIs, weak bases, respectively. The first part of this thesis followed a bioinspired approach to extend the kinetic solubility of salts and co-crystals. API salts and co-crystals are high energy forms that can generate supersaturated solutions with respect to any more stable form, typically the most stable API form in physiological environment. The transient kinetic stabilization of supersaturated states, also termed "parachute effect", is considered to improve bioavailability and is one aspect of the formulation that can be tailored. Inspiration from plants, which store high concentrations of aromatic bases in their vacuoles via complexation with polyphenols, sparked the evaluation to use hydroxybenzoic acid derivatives for salt or co-crystal engineering. Imatinib was chosen as the model compound for this investigation as its aromaticity and flat molecular architecture could favor interactions with hydroxybenzoic acid derivatives. One 1:1 Imatinib syringate co-crystal (I-SYA (1:1)) and one 1:2 Imatinib syringate co-crystal salt (I-SYA (1:2)) were obtained. Their dissolution assays in simulated intestinal fluid (SIF; a 50 mM phosphate buffer of pH 6.8) revealed that they formed stable solutions for several hours and days, respectively, in contrast to the marketed Imatinib mesylate salt (approx. 1h). This kinetic stability in solution was linked to the nucleation inhibition of the less soluble Imatinib hydrate by syringic acid (SYA). In solution 1H-NMR studies evidenced the aggregation of Imatinib and SYA. The amphiphilic nature of both Imatinib and SYA is considered to drive their association in solution, additionally, multiple intermolecular interactions such as hydrogen bonds and π-π stacking are likely to contribute. The association in solution enabled a phase of extended supersaturation, i.e., a parachute against desupersaturation, while no negative impact of aggregation on the permeability of both Imatinib and SYA was observed. A prerequisite to reach supersaturation is a rapid dissolution and release of the API from the formulation. Accordingly, the second and third part of this thesis is focused on the so-called "spring effect" of amorphous solid dispersions (ASDs). The addition of a hydrotropic agent, meaning a molecule that can solubilize poorly water-soluble APIs in aqueous solutions (well-known examples of hydrotropes are benzoic acid and nicotinamide) into an amorphous Ciprofloxacin-polymer matrix led to ternary systems with a significantly faster release and higher concentration of the API in SIF as compared to binary ASDs consisting of Ciprofloxacin (CPX) and polymer only. The stronger spring could be rationalized by an improved wetting of the ASD, or/and by a hydrotropic solubilization effect, although these hypotheses need further investigation. Marked differences in the dissolution profiles of binary ASDs were observed in biorelevant fasted simulated intestinal fluid (FaSSIF; a medium containing Na taurocholate (3 mM) and lecithin (0.75 mM) at pH 6.5) as compared to SIF. In FaSSIF, API release from binary polymeric ASDs was largely improved, and the duration of supersaturation was extended. This suggests that the bile salt Na taurocholate and lecithin present in FaSSIF do improve both dissolution rate and supersaturation of ASDs, the two pillars of ASDs as oral enabling formulations. Indeed, bile salts are endogenous surfactants which, together with phospholipids, play an important role in the wetting, solubilization, and absorption of lipophilic compounds. The aim of the third part of the present thesis was to study ASDs as formulation principles reducing the strong positive food effect of Compound A. By inclusion of Na taurocholate (NaTC) within the matrix of polymeric ASDs a significant improvement of the dissolution rate and the kinetic solubility in SIF were achieved. Transient supersaturated states of up to four orders of magnitude over the equilibrium solubility were obtained. Two ASDs were selected for further in vivo evaluation in dog. The first was a NaTC/Eudragit E based ASD meant to dissolve and release Compound A in the acidic environment of the stomach, where its solubility is the highest. The second relied on the release of Compound A in the neutral environment of the duodenum and jejunum by using an enterically dissolving polymer, HPMC-P. Releasing the API at the site of its putative absorption was an attempt to control supersaturation levels in the duodenum and to prevent portioning and thus dilution effects during transfer from the stomach. In fasted dogs, exposure from the NaTC/HPMC-P ASD was close to that of the reference Compound A formulation under fed conditions, which suggests an improved dissolution rate and kinetic solubility under fasted conditions (historical data). The exposure from the NaTC/Eudragit E ASD was twice as low as from the NaTC/HPMC-P ASD, and also lower compared to Compound A reference formulation, whereas in vitro the parachute effect of the NaTC/Eudragit E ASD was largely superior to that of the NaTC/HPMC-P ASD. A difference in the extend of the parachute could be related to differences in the thermodynamic activity of dissolved molecules from the two ASDs. Indeed, the high instability of the NaTC/HPMC-P ASD could stem from a high thermodynamic activity driving diffusion through membranes, whereas less instable solutions of NaTC/Eudragit E could indicate solubilization effects which often translate into a lower flux through the biological membrane. Additionally, the pH of the environment where dissolution takes place might be an important factor for absorption, and could also account for the difference in exposure from the two ASDs. The aim of this thesis was to explore how the intimate environment of weak, poorly soluble bases could be functionalized to improve dissolution rate and kinetic solubility. The investigations highlighted that the performance of enabling oral delivery formulations of weak bases in aqueous media can be enhanced at different levels. At one end initial dissolution rate of ASDs can be tailored by introducing hydrotropes or/and bile salts within the polymeric matrix of ASDs. Bile salts, when combined with appropriate polymers, had also a precipitation inhibition effect enabling the maintenance of supersaturation for a bio-relevant period of time. These results set the ground for further investigations to comprehend specific interactions between bile salts and APIs, and potentially polymers at the molecular level. It will be interesting to explore how such complex systems can be exploited in the formulation design of poorly water-soluble APIs. In addition, it was observed that the duration of supersaturation generated by salts/co-crystals can be extended by the pertinent selection of counterions or coformers. The in vivo relevance of these tunings remains to be evaluated, as translation from closed, in vitro systems to the highly dynamic gastrointestinal environment is not straightforward. A better understanding of the contribution of each kinetic stage (dissolution, supersaturation, and precipitation) and their interplay with physiological factors impacting absorption is essential to facilitate the design of formulations with improved pharmacokinetics.}, subject = {Kokristallisation}, language = {en} } @phdthesis{Saedtler2021, author = {Saedtler, Marco}, title = {Pharmaceutical formulation strategies for novel antibiotic substances utilizing salt formation and two- and three-dimensional printing techniques}, doi = {10.25972/OPUS-21978}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-219784}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2021}, abstract = {Salt formation is a routinely used strategy for poorly water-soluble drugs and traditionally performed with small inorganic counterions. High energy crystal lattices as well as effects on the local pH within the aqueous boundary layer during dissolution drive the increased dissolution rate and apparent solubility. Ionic liquids however, by definition low melting ionic salts with often large organic counterions, combine an increased dissolution rate with solubilization of the drug by the counterion itself. Long lasting supersaturation profiles of increased kinetic solubility were reported for several drugs formulated as ionic liquids increasing their overall bioavailability. Furthermore, aggregation and micellization between highly lipophilic compounds and amphiphilic bile acids was described before, demonstrating the capabilities of the human body itself to utilize solubilization of poorly water-soluble compounds. Development of novel counterions not only tailoring the desired physicochemical properties e.g. dissolution rate of the parent drug but adding - in a best-case scenario synergistic - pharmacological activity has been driven forward in the last years. However, salt formation can only be applied for ionizable i.e. acidic or basic compounds. While co-crystals can be used as a nonionized alternative, their formation is not always successful leading to an urgent need for other formulation strategies. In these lines, development of 2D and 3D printing techniques has been ongoing for the last decades and their pharmaceutical application has been demonstrated. The versatile nature and commercial availability allow a decentralized production further elaborating this technique for a highly flexible and patient-oriented supply with medication. This thesis focuses on the theoretical background and potential application of salt formation in the pharmaceutical development of a drug candidate. The first section presents the current knowledge and state of the art in preparation of low melting ionic liquids i.e. salts and is translated to the in vitro investigation of molecular interaction between the poorly water-soluble drug imatinib and components of the human intestinal fluid in the second section. Development of novel antibiotic counterions and assessment of their potential use in pharmaceutical formulations with fluoroquinolones is described in the last two sections. Chapter I describes the application of low melting ionic liquids in pharmaceutical formulation and details their development in the last two decades from versatile organic solvents in chemical synthesis towards amorphous strategies for drug delivery. The chapter gives a general overview on molecular structure and physicochemical properties of several drug containing ionic liquids and details the mechanisms which attribute to a typically fast dissolution, increased aqueous solubility as well as enhanced permeation which was reported in several publications. Chapter II translates the increased aqueous solubility of drugs by an organic counterion to the human gastrointestinal tract with taurocholate and lecithin as main drivers for the solubilization of highly lipophilic and poorly water-soluble drugs. Investigation of the interaction of imatinib - a poorly water-soluble weak base - with fasted- and fed state simulated intestinal fluids revealed a complex interplay between the components of the intestinal fluid and the drug. Mixed vesicles and micelles were observed in concentration dependent aggregation assays and revealed differences in their size, molecular arrangement as well as composition, depending on the tested drug concentration. Overall, the study outlines the effective interaction of weakly basic drugs with taurocholate and lecithin to minimize recrystallization during intestine passage finally leading to favorable supersaturation profiles. Chapter III focuses on the development of novel antibiotic counterions which potentially move the evolution of ionic liquids from a pharmaceutical salt with tailored physicochemical properties to a synergistic combination of two active pharmaceutical ingredients. The natural occurring anacardic acid derived from the cashew nut shell inspired a series of antibacterial active acidic compounds with increasing alkyl chain length. Their physicochemical properties, antibacterial activity, bacterial biofilm inhibition and cytotoxicity were detailed and in vivo activity in a Galleria mellonella model was assessed. This group of anacardic acid derivatives is synthetically accessible, easily modifiable and yielded two compounds with favorable activity and physicochemical profile for further drug development. Chapter IV outlines the potential application of anacardic acid derivatives in pharmaceutical formulations by salt formation with fluoroquinolone antibiotics as well as novel techniques such as 2D/3D printing for preparation of drug imprinted products. Despite anacardic acid derivatives demonstrated promising physicochemical properties, salt formation with fluoroquinolone antibiotics was not feasible. However, 2D/3D printed samples with anacardic acid derivative alone or in combination with ciprofloxacin demonstrated physical compatibility between drug and matrix as well as antibacterial activity against three S. aureus strains in an agar diffusion assay. Conclusively, drug printing can be applied for the herein tested compounds, but further process development is necessary. In summary, preparation of low melting ionic liquids, salts or co-crystals is an appropriate strategy to increase the aqueous solubility of poorly water-soluble drugs and tailor physicochemical properties. The counterion itself solubilizes the drug and furthermore potentially interferes with the complex micellar environment in the human intestine. However, salt formation as routinely used formulation strategy is not feasible in every case and development of alternative techniques is crucial to hurdle challenges related to unfavorable physicochemical properties. The outlined techniques for 2D/3D drug printing provide versatile production of drug products while extending the design space for novel drug development.}, subject = {L{\"o}slichkeit}, language = {en} } @phdthesis{SchuesslergebHecht2018, author = {Sch{\"u}ßler [geb. Hecht], Nina Kristin Petra}, title = {Novel formulation principles for bioavailability enhancement of poorly water-soluble and poorly permeable drugs}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-162766}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2018}, abstract = {Since four decades, high-throughput screenings have been conducted in drug discovery, fuelling the identification of potential new drug candidates. This approach, however, often promotes the detection of compounds with undesired physico-chemical properties like poor aqueous solubility or low membrane permeability. Indeed, dissolution and absorption of a drug are prerequisites for systemic exposure and therapeutic effects. Therefore, innovative strategies to optimize unfavourable performance of new drug candidates are in great demand in order to increase drug concentrations at the site of action whilst simultaneously reducing drug variability. In chapter I of this research work, hydrophobic ion pairing (HIP) is discussed as a promising strategy to improve the bioavailability of BCS class III compounds, which have high aqueous solubility and low permeability. The review points out the limitations of poorly absorbable drugs and details the approach of pairing these APIs with hydrophobic counterions. Apart from the motivation to tailor physico-chemical, biopharmaceutical and toxicological properties of BCS class III compounds, the hydrophobic ion pairing facilitates their formulation into drug delivery systems. Besides advantageous effects, disadvantages of the ion pair formation, such as the decreased aqueous solubility of the ions pair, are critically outlined. Finally, the review covers an overview of non-invasive administration routes permitted after ion pair formation, including oral/enteral, buccal, nasal, ocular and transdermal drug administration. Overall, the HIP approach offers substantial benefits regarding the bioavailability enhancement of BCS class III compounds. Chapter II concerns GHQ168 developed by Holzgrabe et al., a BCS class II compound characterized by low aqueous solubility and high permeability. GHQ168 was developed for the treatment of human African trypanosomiasis (HAT), a tropical disease for which novel active compounds are urgently needed. This lead compound was found to be very active against trypanosoma brucei brucei and trypanosoma brucei rhodesiense in cell culture assays, however, the low aqueous solubility prevented further preclinical development. To target this drawback, two different approaches were selected, including (I) the chemical modification and (II) the spray drying of GHQ168. The newly synthesized set of derivatives as well as the spray dried GHQ168 were subjected to a physico-chemical and microbiological characterization. It turned out that both approaches successfully improved aqueous solubility, however, for the derivatives of GHQ168 at the expense of activity. Furthermore, the pharmacokinetic parameters of GHQ168 and of the most active derivatives, GHQ242 and GHQ243, were evaluated. Elimination half-lives between 1.5 to 3.5 h after intraperitoneal administration and modest to strong serum albumin binding for GHQ243 (45\%) and GHQ168 (80\%) and very high binding (> 99\%) for GHQ242 were detected. The spray dried formulation of GHQ168, as well as GHQ242 and GHQ243 were investigated in two in vivo studies in mice infected with t. b. rhodesiense (STIB900), referred to as (I) stringent model and (II) early-treatment model. In the stringent model (2 applications/day on day 3-6 after infection) the mean survival duration (MSD) of mice treated with spray dried GHQ168 exceeded the MSD of the untreated control group (17 days versus 9 days), a difference that was statistically significant. In contrast, no statistical difference was observed for GHQ242 (14 days) and GHQ243 (12 days). GHQ168 was further assessed in the early-treatment model (2 applications/day on day 1-4 after infection) and again a statistically significant improvement of MSD (32 days (end of observation period) versus 7 days) was observed. Finally, exciting antitrypanosomal efficacy for the spray dried formulation of GHQ168 was demonstrated. NADPH oxidases (NOX) were found to be the main source of endothelial reactive oxygen species (ROS) formation. Chapter III reports on the formulation studies on triazolopyrimidine derivatives from the VAS library, a set of NADPH oxidase inhibitors. These were developed for the treatment of elevated ROS levels, which contribute to the development of cardiovascular diseases. Although in vitro results from numerous studies indicated promising efficacy and selectivity for the VAS-compounds, the low water solubility impeded the in vivo translation and further preclinical development. For this reason, three derivatives, VAS2870, VAS3947, and VAS4024 were physico-chemically characterized and VAS3947, the most soluble compound, was selected for further formulation studies. These approaches included (I) spray drying, (II) microemulsification and (III) complexation with cyclodextrins in order to develop formulations for oral and parenteral application. Solubility improvement of VAS3947 was successfully demonstrated for all preparations as expressed by supersaturation ratios in comparison to the solubility of the unformulated compound. For seven spray dried formulations, the ratio ranged from 3-9, and the ratio for four microemulsions was 8-19 after 120 min, respectively. The six cyclodextrin formulations achieved the highest supersaturation ratio between 3 and 174 after 20 hours. NMR measurements elucidated the inclusion of VAS3947 within the CD's cavity as well as the interaction with its outer surface. Ultimately, NOX inhibitors were opened for oral and parenteral administration for the first time. After successful solubility improvement of VAS3947, further investigations towards in vivo studies were conducted including stability studies with a focus on stability in solution and in plasma as presented in chapter IV. Furthermore, permeability and cytotoxicity assays were performed for the first time. It turned out that VAS3947 was instable in buffer and when exposed to light. Moreover, the compound showed decomposition in the presence of mouse microsomes and in human plasma. The VAS compounds contain an oxazol moiety linked to the triazolopyrimidine skeleton via a thioether. This structural element is responsible for the efficacy of the compound class, however it is susceptible to hydrolysis and to further degradation reactions. Moreover, VAS3947 harmed membrane integrity in the cell permeability assays and cytotoxicity investigations in HEK-293 and HEP-G2 cells revealed IC50 values in the same concentration range as reported for efficacy assays. Summarized, it was demonstrated that substances from the VAS library were no appropriate model compounds for ROS investigations nor suitable candidates for further preclinical development.}, subject = {L{\"o}slichkeit}, language = {en} } @phdthesis{Weinmann2023, author = {Weinmann, Joshua}, title = {Chemical Modifications of Quinolone Amides Against African Trypanosomiasis: Balancing Solubility, Bioactivity, and Cytotoxicity}, doi = {10.25972/OPUS-29659}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-296599}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2023}, abstract = {The human African trypanosomiasis is a neglected tropical disease, which is caused by the protozoan Trypanosoma brucei and transmitted by the bite of the tsetse fly. An untreated infection leads to death. However, only a few drugs with significant drawbacks are currently available for treatment. In this thesis, quinolone amides with an antitrypanosomal activity were synthesized and their biological and physicochemical properties were measured. New structure-activity relationships and a promising lead structure were discovered.}, subject = {Trypanosomiase}, language = {en} } @phdthesis{Widmer2015, author = {Widmer, Toni}, title = {Lowering lattice forces in drug substance crystals to improve dissolution and solubility}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-126232}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2015}, abstract = {Lattice forces are based on the attraction between the single moieties of molecules. The strength of lattice forces has an impact on the solid state and related physical properties such as melting point, boiling point, vapor pressure solvation and solubility. For solvation to occur, energy is required to break the lattice forces attracting ions and molecules among themselves. The energy for breaking up the attraction between the molecules is gained from the energy released when ions or molecules of the lattice associate with molecules of the solvent. Solubility is therefore, directly linked to the energy which is required to break the lattice forces and the energy which is liberated by solvation of the molecules or ions. Based on this relation, the lattice forces in two acidic compounds and a neutral compound were subsequently lowered by different approaches with the intention to increase the solubility, supersaturation, and dissolution rate. The conversion to an ionic liquid and the embedding of the compound in a pH-sensitive matrix in an amorphous state were investigated with an acidic compound and its pro-drug. The tetrabutylphosphonium (TBPH) salt showed the most promising properties among the tested counter ions. It alters the properties of the compound from a highly crystalline physicochemical state to an amorphous readily soluble material showing supersaturation in a wider pH range and higher solubility than the sodium and potassium salts. A solid dispersion approach was developed in parallel. Solid dispersions with two different pH-sensitive polymers and different drug load were prepared by lyophilization to determine the miscibility of the compound and the polymer by differential scanning calorimetry (DSC). A miscibility of 50\% of the amorphous acid with the pH-sensitive Eudragit L100-55 matrix and a miscibility of 40\% with hydroxypropyl methylcellulose acetate succinate (HPMC-AS) was found. Both approaches, the TBPH salt and the solid dispersion based on the pH-sensitive Eudragit L100-55 were tested in vivo. The TBPH salt was dosed in a buffered solution to prevent precipitation in the acidic stomach pH. This resulted in BAV higher than the crystalline suspension but lower than the solid dispersion. There were no acute toxicology effects seen. Thus, TBPH was considered safe for further studies. The TBPH salts were very hygroscopic, sticky and prone to precipitation as free compound when exposed to low pH when simulating the passage through the stomach. Thus, the principle of the ionic liquid was combined with the principle of an amorphous solid dispersion. This mitigated the risk of precipitation of the TBPH salt during the passage of the stomach. Also delinquency upon open storage was improved by embedding the TBPH salt in a pH-sensitive polymer. Dissolution tests mimicking the pH gradient in the gastro intestinal tract confirmed the protective properties of the pH-sensitive polymer matrices against recrystallization at low stomach pH in vitro. Furthermore, supersaturation at pH ranges relevant in the intestines of preclinical species or humans was observed. The TBPH solid dispersion showed superior supersaturation behavior in vitro compared to the free acid in pH-sensitive matrix. However, equally increased bioavailability (BAV) was observed when the amorphous solid dispersion contained the free acid form or the TBPH salt. Absorption seemed to be so fast that the short in vitro supersaturation observed for the free from in pH-sensitive matrix was already sufficient for complete absorption within 15 - 30 minutes. This is in accordance with the short tmax of around 15 - 30 minutes after oral application of the low lattice force principles. The pharmacokinetic (PK) profile became the main focus of further optimization as the BAV was maximized already. Early maximal plasma concentration (tmax) went along with high maximal plasma concentration (Cmax) for the low lattice force principles. Central nervous system related side effects as consequence of the PK profile with such a high Cmax were likely to happen and therefore, the formulation principles were modified to maintain the doubled BAV and reduce the observed Cmax. Additionally, the compound showed a short half-life requiring a two times daily dose, which is suboptimal for a chronic treatment. The amorphous acid in pH-matrix showed a modified PK profile when dosed in a hydrogel but not in an oleo gel. Surprisingly, administration of the TBPH salt in pH-matrix suspended in oil showed a massive delay of the tmax to 8 hours and a reduction of Cmax by factor 2 - 3 with unchanged good BAV when administered as a suspension in oil without increased viscosity. TBPH salt solution with a high viscosity resulted in the same PK profile as when administered without increased viscosity. The animal model was changed from rat to dog. The dose was limited to 15 mg/dog since they reacted much more sensitively to the drug. BAV at this dose level was 100\% for the crystalline suspension already, thus the focus of this study was not increasing BAV but to achieve prolonged and/or delayed exposure using different formulation principles elaborated in rats before. An immediate release formulation of 3 mg was combined with a delayed/modified release principle containing 12 mg of the compound. An additional study arm was conducted with a remote controlled device programmed to deliver a first dose of 3 mg instantaneously after passing the stomach and a second dose of 12 mg when entering the caecum. The tmax remained short for all formulation principles and it seemed that delayed and modified release lead to BAV reduction. The modified PK profiles could not be translated to an oral dog model which endorsed the hypothesis of an absorption window; however, the in vitro results could be translated to a dog model for colonic absorption. A nanosuspension of the crystalline compound, the TBPH salt in pH-matrix and the TBPH salt of the pro-drug of the compound were administered rectally to determine colonic absorption. The nanosuspension showed exposure around the limit of quantification whereas the TBPH in pH-matrix showed 4\% BAV and the pro-drug as TBPH salt in pH-matrix resulted in 12\% BAV although the pro-drug is factor 3 less soluble. This was in line with the increased permeation of the pro-drug which was observed in the Caco2 experiments. The bioavailability was increased by using the low lattice force principles and validated the hypothesis for the acidic drug and its pro-drug in the colonic dog model. Chemical and physicochemical stability of the investigated solid dispersions was confirmed for at least 18 months at room temperature. Amorphous solid dispersions were investigated to lower lattice forces of a neutral molecule. Solid dispersions are well known from literature; however, they are not frequently used as principles for dosage forms due to limitations in physical stability and complex manufacturing processes. A viable formulation principle was developed for a neutral compound assuming that the stability of a solid dispersion with a drug load below the maximal miscibility will be better than one which exceeds the maximal miscibility. The dispersed and amorphous state of the neutral compound resulted in a higher energy level and chemical potential compared to a crystalline form implying that they are thermodynamically instable and sensitive to recrystallization. This was confirmed by the fast recrystallization of an amorphous solid dispersion made from HPMC with 50\% drug load which recrystallized within a few days. Solid dispersions with different drug loads in different polymers and in polymer mixtures were prepared by lyophilization. The miscibility of the compound and the polymer was determined by DSC as the miscibility is a surrogate for maximal stable drugload of the solid dispersion. HPMC was found to be miscible with 20\% compound confirming the instability of the 50\% HPMC solid dispersion observed earlier. Based on dosing needs, a miscibility/drug load of at least 30\% was mandatory because of the dosing requirements to dose less than 1500 mg of final formulation. This was considered as maximal swallowable volume for later clinical development. Thus, all systems with a miscibility higher or equal to 30\% drug in polymer were evaluated in an in vitro dissolution test and ranked in comparison with amorphous pure compound, crystalline compound and a 20\% drug load solid dispersion made from HPMC. The HPMC based solid dispersion which gave good exposure in previous in vivo experiments did not support the high drugload that was needed. Therefore, similar in vitro behavior of this solid dispersion should result in similar in vivo performance. The polyvinylpyrrolidone (PVP) based solid dispersions scored with high drug load and medium initial kinetic solubility. The Soluplus based solid dispersion offer lower drug load and slightly lower initial kinetic solubility, but showed an extended supersaturation. The 4 best performing systems were evaluated in rats. They resulted in a short Tmax of 15 minutes and BAV higher than 85\% indicating fast and complete absorption. The reference HPMC based solid dispersion with a drug load of 20\% showed 65\% BAV. This showed that higher drug loads were feasible and did not limit absorption in this animal model. Since the estimated human dose required a higher formulation density than obtained from lyophilization or spray drying, melt extrusion of the solid dispersion was considered to be the most adequate technology. The process temperature needed to be below 200 °C as this value represents the degradation temperature of the polymers. It was investigated by differential scanning calorimetry whether the compound can be mixed with the molten polymer. None of the polymers could dissolve the crystalline compound below the degradation point of the polymer. The temperature had to be increased to 260 °C until the compound was molten together to a monophasic system with polymer. This resulted in degradation of the polymers. Therefore, different plasticizers and small organic molecules with similar functional groups as the compound were investigated on their ability to reduce the melting point of the mixture of polymer and compound. Positive results were obtained with several small molecules. Based on a literature review, nicotinamide had the least concerning pharmaceutical activities and was chosen for further development. Solid dispersions with the same composition as the ones tested in rat were prepared with 9\% nicotinamide as softener. Extrusion without nicotinamide was not possible at 135 °C or at 170 °C whereas the addition of 9\% nicotinamide led to a homogenous extrudate when processed at 135 °C. The solid state of the extrudates was not molecularly dispersed but the compound was in a crystalline state. They could not reach the in vitro performance observed for the lyophilized solid dispersions with Soluplus or PVP derivatives. Nevertheless, the performances in the supersaturation assay were comparable to the HPMC based lyophilized solid dispersion. The Soluplus and PVP based crystalline extrudates were evaluated in a dog PK showing that the crystalline solid dispersion does not enable BAV higher than 90\% within 24 hours after application. In parallel, the hygroscopicity of the meltextrudates was investigated by DVS and the best performing system based on Kollidon VA64 was further optimized regarding the solid state after its extrusion. The minimal process temperature to obtain a fully amorphous solid dispersion was determined by hot stage X-ray powder diffraction analysis (XRPD) and confirmed by lab scale extrusion. Addition of 9\% nicotinamide lowered the process temperature from 220 °C (without nicotinamide) to 200 °C with nicotinamide. The minimal temperature for obtaining crystal free material was independent of the nicotinamide amount as soon as it exceeded 9\%. Lowering the process temperature with nicotinamide reduced the impurity levels from 3.5\% at 220 °C to 1.1\% at 200 °C. The fully amorphous extrudates performed now better in the in vitro supersaturation assay than the lyophilized amorphous HPMC solid dispersion and the crystalline extrudates which were extruded at 135 °C. The process was up-scaled to a pilot scale extruder with alternative screw designs increasing mechanical shear forces and mixing which enabled lower process temperatures. This resulted in a maximal process temperature of 195 °C when nicotinamide was present and 205 °C without nicotinamide. However, shorter process time and reduced process temperatures (compared to the lab scale equipment) resulted in impurity levels smaller than 0.5\% for both compositions and temperatures and made the nicotinamide obsolete. The amorphous extrudates from the pilot scale extruder performed better in vitro than the crystalline extrudates from the lab scale extruder and the lyophilized HPMC solid dispersion. A comparable PK profile of the HPMC solid dispersion and the amorphous melt extruded formulation principle was anticipated from these in vitro results. This was confirmed by the pharmacokinetic profile in dogs after oral administration of the final extruded solid dispersion formulation which was equivalent with the pharmacokinetic profile of the HPMC based solid dispersion formulation. The assumption that using a drug load below the miscibility prevents the solid dispersion from recrystallization was verified at least for a limited time by a stability test at elevated temperatures for 3 months showing no change in solid state. This indicates the opportunities of the low lattice forces approach, but also showed the importance of developing principles first assuring stable solid state, performance in vitro and in vivo, tailor them in a second step based on performance and combine them with technology such as melt extrusion as third step. If these steps are done in the context of clinical needs and quality it can rationalize the development of a solid dispersion and minimalize the formulation related risks regarding biopharmacy and stability.}, subject = {Arzneimittel}, language = {en} }