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Toxicokinetics in drug development: an overview of toxicokinetic application in the development of PNU-101017, an anxiolytic drug candidate.

The importance of toxicokinetics in the drug development has been identified in the last decade. The main objectives of toxicokinetics in general are to define the drug bioavailability, dose proportionality, gender differences, and species differences in pharmacokinetics and metabolism, from which the target organ toxicity can be predicted and the safety doses in the first human clinical trial can be established. Toxicokinetic studies may also serve as a tool for the toxicologic pathologist in understanding models used for predicting and assessing drug-related toxic response. Toxicokinetics/toxicodynamics are critical to investigating the toxicological mechanism and understanding the comparative toxicity between animals and humans. This report presents an overview of the application of toxicokinetics and its impact in the drug development of PNU-101017, a drug candidate for the treatment of anxioety. Serial specifically designed toxicokinetic studies identified a steep dose-response relationship between the clinical signs and PNU-101017 serum or CSF concentrations, characterized the centrally mediated respiratory depression as the toxicity leading to the lethality, and demonstrated marked species differences in the sensitivity to the toxic effects. These findings lead to a termination of PNU-101017 development due to the safety concern in humans.

Animals↗

Regulatory and drug development issues related to female sexual dysfunction.

Following the approval of sildenalfil for the treatment of erectile dysfunction, an increased awareness of and interest in female sexual dysfunction developed on the part of the academic and research communities as well as the pharmaceutical industry. This article will focus on regulatory issues related to the development of drug products to treat female sexual dysfunction and will describe a recently published drug development guidance document for this indication.

Clinical Trials as Topic↗

The EORTC and drug development. European Organisation for Research and Treatment of Cancer.

Early drug development at EORTC has always been subject to structural changes to adapt to the rapid changes that occur in oncological drug development. The expertise of early drug developers has always been cross-fertilised with disease-/tumour-oriented groups and also backwards to the laboratory research groups. This results in the establishment of a solid and dedicated network of medical oncologists with focused expertise in cancer drug development. The EORTC Data Center is fully equipped with all expertise to support clinical research activities and includes regulatory, safety, and quality assurance desks. The EORTC New Drug development Programme (NDDP) provides methodological expertise to early clinical trials and coordinates phase I and phase II studies addressing various approaches. Through NDDP, the early clinical groups and the disease-/tumour-oriented groups have created specific networks to address early drug development in specific tumour types. This results in very efficient networks which have the resources and the patients to address and conduct challenging clinical trials in a standardised fashion ensuring the highest standards in cancer treatment.

Antineoplastic Agents↗

Leukemia: A model for drug development.

Early attempts at preclinical model development for cancer drug development relied heavily on mouse leukemias and lymphomas to detect agents with antitumor activity. These models were applied clinically, and the concepts of combination chemotherapy, remission induction, and maintenance treatment all developed in leukemia. Subsequently, the predominant impact of cytogenetics on probability of response to treatment and survival was first illustrated in leukemia. The power of a single drug to change the natural history of a disease was noted in acute myelogenous leukemia, in which a previously incurable disease was rendered potentially curable with 1-beta-D-arabinofuranosylcytosine. Additional studies illustrated the exquisite relationship between karyotype and response to specific agents. The ability to achieve a high proportion of complete remissions and to control the complication of intravascular coagulation, acute promyelocytic was noted with all-trans retinoic acid. The concept that new drug activity would only be demonstrated in patients with minimal prior therapy has been challenged by the curative potential of a number of agents in far-advanced hairy cell leukemia. In addition, fludarabine monophosphate (Fludara) was sufficiently active in advanced refractory patients that approval for this agent in chronic lymphocytic leukemia was granted by the Food and Drug Administration without comparative clinical trials. Fludara was initially a drug with limited therapeutic range, active only in indolent lymphoproliferative disorders. However, understanding of the multiple biochemical actions of this agent has led to its use in combinations with 1-beta-D-arabinofuranosylcytosine in acute myelogenous leukemia and myelodysplastic syndrome and with DNA active agents such as novantrone and cyclophosphamide in other lymphoproliferative disorders. The understanding of the various actions of this drug gives rise to a wide range of possibilities for biochemical modulation with agents active in solid tumors. The evolution of this understanding of the new role of Fludara has occurred over a period of 10 years. A drug with similar potential in the next decade is compound 506U78, an analogue of arabinosyl guanosine. This agent has potent activity in acute T-cell leukemia. Because it shares many of the activities of Fludara in interfering with enzyme systems important in DNA and RNA synthesis and DNA repair, it is likely that this agent will also have a wider scope than is presently obvious. The unique accessibility of leukemia cells for study has allowed hematologists to understand more fully the range of activities of new agents and has led to important new concepts in the area of drug development.

Adult↗

Barriers to Alzheimer disease drug discovery and drug development in the pharmaceutical industry.

The drug development process in the pharmaceutical industry has evolved from separate programs, specific for each country, into one coordinated, global development scheme. As a result, such a development program must meet regulatory requirements for all countries in which approval for the new drug will be sought. Barriers to Alzheimer disease (AD) drug discovery and development in the pharmaceutical industry can be categorized as (1) regulatory, (2) logistical, and (3) drug development issues. Some of the regulatory barriers could be overcome by international harmonization of guidelines for the development of antidementia drugs. The logistical issues can be reduced through international collaboration in the conduct of clinical studies, and the developmental issues can be addressed by using an expedited drug development plan that not only can reduce the time but also the resources required to develop the drug.

Alzheimer Disease↗

Biomedical informatics: the future for drug development.

The problems that exist in drug development are well documented: the limited number of new chemical entities, increased cost of drug development, problems in clinical trials (Phase III), product launches that result in withdrawal, and pressure to reduce the cost of pharmaceuticals from the government. It appears that the promise of genomics has not yet reached its full potential to impact the process. This review identifies the need to develop and implement the area of biomedical informatics for increased success in drug development and healthcare in general.

Aging↗

[Understanding of molecular pathogenesis of Alzheimer's disease: implications for drug development].

Recent advances in the knowledge about Alzheimer pathogenesis indicate several tactics for the development of drugs to treat Alzheimer's disease. Firstly, the function of presenilin, the causative gene for most familial Alzheimer's disease, has been demonstrated to be the protease in the Notch signaling system. Presenilin cleaves the transmembrane domain of the C-terminal fragment of the Notch-1 molecule, which is generated by proteolysis by furin-like proteases. APP is also cleaved by presenilin at the gamma cut site, implying that presenilin is gamma-secretase itself or at least closely functioning with gamma-secretase. A recent paper has demonstrated that immunization of APP transgenic mouse with amyloid beta 42 may decrease and prevent amyloid deposition in brain tissue. This unique and novel approach may open the new tactics for developing anti-dementia drugs. Another important finding comes from the identification of the function of prolyl isomerase. It is demonstrated that pin 1, intra-nuclear prolyl isomerase, can restore the microtubule binding capacity of phosphorylated tau, which clearly shows a solid strategy for developing drugs for preventing neuronal degeneration.

Alzheimer Disease↗

Predictive toxicology in drug development.

A critical issue in drug development remains the failure to identify toxicological problems in new chemical entities sufficiently early in development to avoid the expense of terminating drugs in late-stage clinical development. The Society of Chemical Industry's BioActive Sciences Group arranged a one-day meeting in London, United Kingdom, on February 27, 2003, devoted to progress in the development of in silico modeling and expert systems. The meeting provided an assessment of the progress that has been made in the development of models that can be used to evaluate chemical libraries at the design stage, or to predict potential toxic effects while chemical projects are still in the lead optimization stage. Although success in developing such models might reduce the number of new chemical entities progressing to clinical development, its potential for reducing the high attrition rate (approximately 50%) in late-stage (phase II and later) clinical development could produce a substantial cost saving and might also shorten the time frame of drug development.

Drug Design↗

Role of pharmacokinetic-pharmacodynamic principles in rational and cost-effective drug development.

An important goal of drug development is to define dose and concentration-response relationships for new drugs and biologics. Such critical information from controlled clinical trials can provide primary evidence of efficacy and safety and an informative database for devising dosing instructions for clinical use. This article describes applications of pharmacologic principles [pharmacokinetic-pharmacodynamic (PK-PD)] and modeling methods for drugs in which the evaluation process is guided by and/or identifies significant PK and/or PD variability in drug response. In the case of the recently registered immunosuppressive agent, tacrolimus, preclinical PK-PD in model systems can be used to rationally design safe and effective immunomodulatory dosing regimens for phase 1 clinical studies. Furthermore, a study design based on concentration control guided by a novel artificial intelligence modeling system (AIMS) can be efficiently applied to conduct randomized clinical trials in auto-immunity and to implement cost-effective therapeutic drug monitoring of tacrolimus and cyclosporine in clinical transplantation. In the case of a cardioselective beta-adrenergic blocking agent, betaxolol, marketed for essential hypertension, population PD modeling can be shown to be a more efficient method for estimating dose response compared with standard statistical tests. Using a sigmoid Emax PD model, only a fraction (40 of 300) of the randomized patients was needed to demonstrate dose response. Therefore, two methods, i.e., PD modeling of dose response and AIMS-guided dosing, can achieve significant cost benefits for drug developers, patient care, and the health care system.

Artificial Intelligence↗

Drug development in India.

The drug development process is complex. It takes about 5--7 years before a compound synthesised in the laboratory can be made available the general practitioner for therapeutic usage. Furthermore, only a few of the compounds developed and synthesised in the laboratory with possible hope of therapeutic application, satisfactorily pass through all the stages of development process. Complete development of a new drug may cost 10--15 million rupees and needs the technical expertise of the highest order. Obviously this calls for tremendous financial and human resources. It is, therefore, imperative that research investments are properly planned and wisely made. It should be a well coordinated team effort with deep considerations of economic management. Clinical pharmacology plays an essential and a meaningful role in this process and its interactions with the pharmaceutical industry should be such as to ensure therapeutic efficacy and safety of new drugs.

Animals↗

An evaluation of the integration of pharmacokinetic and pharmacodynamic principles in clinical drug development. Experience within Hoffmann La Roche.

The integration of pharmacokinetic and pharmacodynamic principles into drug development has been proposed as a way of making it more rational and efficient. The use of these principles in drug development to make scientific and strategic decisions is defined as the 'pharmacokinetic-pharmacodynamic guided approach to drug development'. The objectives of this survey were: (i) to assess the extent the pharmacokinetic-pharmacodynamic guided approach to drug development has been used in a large multinational pharmaceutical company: (ii) to evaluate the impact of pharmacokinetic and/or pharmacodynamic results on clinical drug development; and (iii) to identify factors which prevented the full application of the pharmacokinetic-pharmacodynamic guided approach. This was done by looking at 18 projects in the current development portfolio at Hoffman La Roche and evaluating the use of this approach by interviewing the responsible clinical pharmacologist using a standardised questionnaire. (i) Benefits from using the pharmacokinetic-pharmacodynamic guided approach were reported in every project, independent of development phase and therapeutic area. This approach was more extensively used in the recent projects. The selection of dosages in clinical studies was found to be the most important application of pharmacokinetic-pharmacodynamic results in terms of an impact on drug development. (ii) Time savings, up to several months, could be quantified in 8 projects during the entry-into-man studies and in 6 projects during the phase II or III studies. In 4 projects, 1 clinical study was avoided. (iii) The most important scientific factor preventing the full application of the approach was the lack of knowledge on the predictive value of the pharmacodynamic or surrogate marker for effect (6 projects). The results of the survey have shown that the use of the pharmacokinetic-pharmacodynamic guided approach has contributed to making clinical drug development more rational and more efficient. Opportunities to apply the pharmacokinetic-pharmacodynamic approach should be identified in each project and a project specific strategy for the pharmacokinetic-pharmacodynamic guided approach should be defined during phase 0 of drug development.

Cost-Benefit Analysis↗

A forecasting approach to accelerate drug development.

The clinical phase of drug development should be concluded sooner and at a lower cost if primarily only the pivotal and supportive studies were to be conducted. Such improved efficiency requires development of a decision support system that delivers five new capabilities: (i) it enables one to predict a result of a clinical study and to identify those studies that are expected to have an acceptable probability of success; (ii) it will allow one to optimally utilize available pharmacokinetic and pharmacodynamic (PK/PD) data and improve its predictive capability as more data become available; (iii) it will enable one to project useful population results, not just mean results; (iv) predictions will be accompanied by a measure of reliability; and (v) expected initial clinical results will be predictable from animal and related drug class data. With such a tool population targets could be specified very early in the drug development programme, challenged, and then rationally revised at each step during the development process. This report describes progress in developing and testing a clinical trials Forecaster, a prototype for such a system. The Forecaster generates estimates of the joint density for a population of combined PK/PD parameters. That population then serves as a surrogate for the population of individuals. When the resulting joint density is sampled, the obtained sets of parameters may be used to generate data that is statistically indistinguishable from the original experimental data. Such simulated data can be used to validate assumptions, and make inferences on specified population targets that are accompanied by a measure of prediction reliability. We demonstrate use of the forecaster by employing N = 22 PK/PD parameter sets for an orally administered analgesic.

Bias↗

Positron emission tomography microdosing: a new concept with application in tracer and early clinical drug development.

The realisation that new chemical entities under development as drug candidates fail in three of four cases in clinical trials, together with increased costs and increased demands of reducing preclinical animal experiments, have promoted concepts for improvement of early screening procedures in humans. Positron emission tomography (PET) is a non-invasive imaging technology, which makes it possible to determine drug distribution and concentration in vivo in man with the drug labelled with a positron-emitting radionuclide that does not change the biochemical properties. Recently, developments in the field of rapid synthesis of organic compounds labelled with positron-emitting radionuclides have allowed a substantial number of new drug candidates to be labelled and potentially used as probes in PET studies. Together, these factors led to the logical conclusion that early PET studies, performed with very low drug doses-PET-microdosing-could be included in the drug development process as one means for selection or rejection of compounds based on performance in vivo in man. Another important option of PET, to evaluate drug interaction with a target, utilising a PET tracer specific for this target, necessitates a more rapid development of such PET methodology and validations in humans. Since only very low amounts of drugs are used in PET-microdosing studies, the safety requirements should be reduced relative to the safety requirements needed for therapeutic doses. In the following, a methodological scrutinising of the concept is presented. A complete pre-clinical package including limited toxicity assessment is proposed as a base for the regulatory framework of the PET-microdosing concept.

Animals↗

The roles of the pharmaceutical industry and drug development in dermatology and dermatologic health care.

Drug development is becoming shorter, more high-tech and strategic, more costly, and more complicated. The pharmaceutical, biotech, and cosmetic companies, along with regulatory agencies such as the FDA, are struggling to cope with and master the scientific, medical, and economic implications of this new environment. There are rapidly growing new classes of drugs, including biologicals, genomics, antibodies, and novel receptor-ligand antagonists. Dermatologic drug development has several idiosyncrasies, including the vehicle in topical drugs. Development for dermatology is much cheaper than for other therapeutic areas but also generates much less sales. The pharmaceutical industry's search for blockbusters threatens to leave dermatology without access to these new technologies, therapeutic modalities, and drug classes. The pharmaceutical industry is interested, invested, and intertwined, at many different levels, in the efforts and practices of academic dermatology, dermatology specialty organizations, and clinical dermatologists.

Cosmetics↗

Pharmacokinetic/pharmacodynamic modeling in drug development.

We propose a framework for considering the role of pharmacokinetic/pharmacodynamic modeling in drug development and an appraisal of its current and potential impact on that activity. After some introduction, definitions, and background information on drug development, we discuss subject-matter models that underlie pharmacokinetic/pharmacodynamic modeling and show how they determine appropriate statistical models. We discuss the broad role modeling can play in drug development, enhancing primarily the "learning" steps, i.e. acquiring the information needed for the label and for planning efficient confirmatory clinical trials. Examples of past applications of modeling to drug development are presented in tabular form, followed by a discussion of some practical issues in application. Modeling will not reach its potential utility until it is manifest as a visible and separate work unit within a drug development program. We suggest that that work unit is the "in numero" study: a protocol-driven exercise designed to extract additional information, and/or answer a specific drug-development question, through an integrated model-based (meta-) analysis of existent raw data, often pooled across separate (clinical) studies.

Animals↗

Biomarkers and surrogate endpoints: how and when might they impact drug development?

As the pharmaceutical industry starts developing novel molecules developed based on molecular biology principles and a better understanding of the human genome, it becomes increasingly important to develop early indicators of activity and/or toxicity. Biomarkers are measurements based on molecular pharmacology and/or pathophysiology of the disease being evaluated that may assist with decision-making in various phases of drug development. The utility of biomarkers in the development of drugs is described in this review. Additionally, the utility of pharmacokinetic data in drug development is described. Development of biomarkers may help reduce the cost of drug development by allowing key decisions earlier in the drug development process. Additionally, biomarkers may be used to select patients who have a high likelihood of benefit or they could be used by clinicians to evaluate the potential for efficacy after start of treatment.

Biomarkers↗

Pharmacogenomics in anticoagulant drug development.

The emergence of pharmacogenomic-guided anticoagulant drug development has unraveled novel approaches in the management of patients and ensured individualized therapy to one and all. Gene expression profiling will be useful in the diagnoses of various diseases, in preclinical phases of drug development and in developing markers for adverse drug reactions and desired pharmacological effects. Hence, the adverse drug reactions can be avoided by withdrawing a particular drug. Through cheminformatics, decisions could be made in anticoagulant drug discovery, tailored to the individual needs of the patient at the right dosage and right time. As the human genome is now completely mapped, gene-based single nucleotide polymorphism will be valuable in the diagnosis of diseases. In this review, various polymorphism of coagulation factors will be discussed. Newer anticoagulant drugs could be withdrawn from drug discovery and development pipelines should they exhibit hepatic metabolism requiring CYP450 enzymes known to manifest single nucleotide polymorphism resulting in adverse drug reactions. Pharmacogenomics and cheminformatics should be incorporated in the current study designs of prospective clinical trials. Pharmacogenomic and pharmacogenetic data should be included in the Investigational New Drug (IND) applications, which would enable the FDA to better understand its true impact on pharmacoeconomics. Pharmacogenomics will eventually revolutionize anticoagulant drug development and future practice of medicine.

Animals↗

Pharmacometrics: modelling and simulation tools to improve decision making in clinical drug development.

There is broad recognition within the pharmaceutical industry that the drug development process, especially the clinical part of it, needs considerable improvement to cope with rapid changes in research and health care environments. Modelling and simulation are mathematically founded techniques that have been used extensively and for a long time in other areas than the pharmaceutical industry (e.g. automobile, aerospace) to design and develop products more efficiently. Both modelling and simulation rely on the use of (mathematical and statistical) models which are essentially simplified descriptions of complex systems under investigation. It has been proposed to integrate pharmacokinetic (PK) and pharmacodynamic (PD) principles into drug development to make it more rational and efficient. There is evidence from a survey on 18 development projects that a PK/PD guided approach can contribute to streamline the drug development process. This approach extensively relies on PK/PD models describing the relationships among dose, concentration (and more generally exposure), and responses such as surrogate markers, efficacy measures, adverse events. Well documented empirical and physiologically based PK/PD models are becoming available more and more, and there are ongoing efforts to integrate models for disease progression and patient behavior (e.g. compliance) as well. Other types of models which are becoming increasingly important are population PK/PD models which, in addition to the characterization of PK and PD, involve relationships between covariates (i.e. patient characteristics such as age, body weight) and PK/PD parameters. Population models allow to assess and to quantify potential sources of variability in exposure and response in the target population, even under sparse sampling conditions. As will be shown for an anticancer agent, implications of significant covariate effects can be evaluated by computer simulations using the population PK/PD model. Stochastic simulation is widely used as a tool for evaluation of statistical methodology including for example the evaluation of performance of measures for bioequivalence assessment. Recently, it was suggested to expand the use of simulations in support of clinical drug development for predicting outcomes of planned trials. The methodological basis for this approach is provided by (population) PK/PD models together with random sampling techniques. Models for disease progression and behavioral features like compliance, drop-out rates, adverse event dependent dose reductions, etc. have to be added to population PK/PD models in order to mimic the real situation. It will be shown that computer simulation helps to evaluate consequences of design features on safety and efficacy assessment of the drug, enabling identification of statistically valid and practically realisable study designs. For both modelling and simulation a guidance on 'best practices' is currently worked out by a panel of experts comprising representatives from academia, regulatory bodies and industry, thereby providing a necessary condition that model-based analysis and simulation will further contribute to streamlining pharmaceutical drug development processes.

Clinical Trials as Topic↗