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Total 77 records

    Pharmaceutical Active Compounds Removal by Immobilized Laccase on the Membrane

    , M.Sc. Thesis Sharif University of Technology Golgoli, Mitra (Author) ; Borghei, Mehdi (Supervisor) ; Ghobadi Nejad, Zahra (Co-Supervisor)
    Abstract
    Pharmaceutical active compounds existence in the water would cause serious ecological risks and human health-related adverse effects which turn to environmental concern, therefore several studies have done to remove pharmaceutical active compounds efficiently. Carbamazepine (CBZ), a widely used psychiatric drug, is one of the most frequently detected compounds in the surface water and groundwater which is studies in the current study. Recently, biocatalytic degradation using ligninolytic enzymes such as laccase provides a promising approach for their removal from water and wastewater. In this work, carbamazepine removal by immobilized laccase on modified membrane by multi wall carbon nanotube... 

    Manufacturing, Evaluation, and Optimization of Microreactor for Continuous Synthesis of Pharmaceutical

    , M.Sc. Thesis Sharif University of Technology Mirchi, Arman (Author) ; Kazemeini, Mohammad (Supervisor) ; Hosseinpour, Vahid (Co-Supervisor)
    Abstract
    Clopidogrel, as an antiplatelet medicine, is currently one of the most widely used medicines to reduce the risk of stroke and prevent the formation of blood clots for heart patients all over the world. This medicine is still produced using the conventional approach of drug production, i.e. batch method. On the other hand, due to the many advantages of flow chemistry, such as increasing the rate of mass and heat transfer, increasing safety, performance, etc., the production of medicines using the flow approach has been highly regarded by large pharmaceutical companies in recent years. In this research, the production of clopidogrel was done using a continuous flow approach and different... 

    Enterprise-wide Optimization in Batch Processes

    , M.Sc. Thesis Sharif University of Technology Moadeli, Behrad (Author) ; Rashtchian, Davood (Supervisor) ; Vafa, Ehsan (Supervisor)
    Abstract
    According to the competitive nature of process industries and the necessity of increasing the efficiency of supply, manufacturing, and distribution operations, the optimization of such activities with an integrated attitude has become a major goal of research in the field of Process Systems Engineering. Lying at the interface of Chemical Engineering and Operations Research, enterprise-wide optimization has become a tool that enables the integrated optimization of different components of an industry to maximize the net profit. Design, Planning, Scheduling, and Control are four major operational items within such an optimization that may be simultaneously considered; among which, Planning and... 

    photocatalytic elimination of organic pollutant including dye and Pharmaceutical materials in batch reactor using Hierarchical ZSM-5

    , M.Sc. Thesis Sharif University of Technology Moradi, Ashkan (Author) ; Kazemeini, Mohammad (Supervisor) ; Hosseinpour, Vahid (Co-Supervisor)
    Abstract
    The aim of this research is to make a hierarchical zeolite catalyst as a basis for photocatalytic removal reactions of organic pollutants including dyes and drugs. The three main parts of this thesis deal with preparing the photocatalyst, performing the characterization test and investigating the reaction in different operating conditions. To prepare zeolite, first an organic molecule was synthesized to increase the diameter of the holes and it was used along with the rest of the precursors in the hydrothermal method. To increase the efficiency of photocatalytic reactions, the silver element was deposited on the ZnO / zeolite catalyst by photodeposition method and its characteristics were... 

    Drug Synergy Prediction on Diverse Cancer Cell-Lines Using Deep Learning

    , M.Sc. Thesis Sharif University of Technology Labbaf, Farzaneh (Author) ; Hossein Khalaj, Babak (Supervisor)
    Abstract
    Despite significant progress in cancer treatment, drug resistance remains a major challenge. Synergistic drug combinations offer a promising approach to overcome drug resistance and reduce side effects. Still, despite high-throughput testing technologies, existing drug combination databases suffer from biases and a lack of diversity in tested cancer cell lines, which challenges the prediction of drug response on novel cell targets. To address this critical need, we designed a two-level deep learning method that uses large-scale gene expression datasets to estimate the score and synergy of drug compounds on a wide variety of cancer cell lines. Our model includes an auto-encoder that train on... 

    Deep analysis of Growth’s Pattern of Technological Capabilities in Knowledge-based Companies: Case Studies in Four Different Sectors

    , M.Sc. Thesis Sharif University of Technology Ghorbanian, Mohammad (Author) ; Souzanchi, Ebrahim (Supervisor)
    Abstract
    Technological capabilities as one of the growth’s aspects in developing countries have gained focus for research in last years. This study attempt to analyze the pattern of technological capabilities in four different sectors including Optic, Aerospace, Pharmaceutical and Biotechnology. In each sectors four Iranian companies as the case studies are selected. After deep interviews with key people in each company, required data is gathered. Data in each company is analyzed. The results of analysis for companies in one sector are gathered for analyzing each sector. In order to evaluate technological capabilities, the time required to improve, lead-lag relationship for gaining higher levels of... 

    Mathematical Modeling for Distribution and Routing Problem under Uncertainty

    , M.Sc. Thesis Sharif University of Technology Sadeghi Ahouei, Saba (Author) ; Akbari Jokar, Mohammad Reza (Supervisor)
    Abstract
    Supply chain management is very important in pharmaceutical industry, due to its impact on people’s health. In this thesis we considered a three-layer multi-product multi-period pharmaceutical supply chain and we proposed a mixed-integer linear programming model to solve location, allocation, inventory and routing problems in this supply chain. This model aims to minimize the total costs in the supply chain. In this problem we also considered the deterioration of medicines. To bring the model closer to real world problems we considered demand as an uncertain parameter and handle the uncertainty using robust programming. We solve the model with large scale examples using genetic and Particle... 

    Investigation of Constructing a Biosensor for Endotoxin Detection in Biological Products and Comparison of the Results with Conventional Endotoxin Detection Methods

    , M.Sc. Thesis Sharif University of Technology Zandieh, Mohammad (Author) ; Vosoughi, Manouchehr (Supervisor) ; Hosseini, Nezameddin (Supervisor)
    Abstract
    Lipopolysaccharide (LPS), also known as endotoxin, is a highly toxic component exists in the outer membrane of gram negative bacteria. It releases into the environment during every phase of bacterial growth cycle, so it causes contamination of a wide range of biopharmaceutical products. Even small quantities of endotoxin injected to human body can result in fever, septic shock, and death. Therefore, it is highly important to detect and also quantify endotoxin of biopharmaceutical products in quality control laboratories. The most validated method used for endotoxin detection is Limulus Amebocyte Lysate (LAL). Although this method is sensitive, it has some unavoidable drawbacks such as highly... 

    Drug Target Binding Affinity Prediction Using a Deep Generative Model Based on Molecular and Biological Sequences

    , M.Sc. Thesis Sharif University of Technology Zamani Emani, Mojtaba (Author) ; Koohi, Somayyeh (Supervisor)
    Abstract
    Drug-target binding affinity prediction is one of the most important and vital part of drug discovery. The computational methods to predict binfing affinity is a standing challenge in drug discovery. State-of-the-art models are usually based on supervised machine learning with known label information. It is expensive and time-consuming to collect labeled data. This thesis proposes a semi-supervised model based on convolutional GAN (Generative adversarial networks). The model consists of two Gans and Two CNN blocks for feature extraction and fully connected layers for prediction. Gan can learn protein and drug features from unlabeled data. We evaluate the performance of our method using four... 

    Feasibility Study of Producing Active Pharmaceutical Ingredient from Conceptual Process to Mass Production-Case Study

    , M.Sc. Thesis Sharif University of Technology Tavakoli, Meysam (Author) ; Mostafavi, Mostafa (Supervisor)
    Abstract
    The main aim of this thesis is to develop the technical knowledge of designing and making active ingredients of domestically produced drugs, decreasing the costs, independency in producing these products, and checking outflow of currency. It also aims to reduce the financial challenges of patients who have to pay huge amounts for such drugs. Conducting research in the field of reverse engineering and using its definition, and attempt in made to get knowledge into the stages of product development process, to determine the technical standards associated with each stage, to recognize how knowledge is shared during this process, and to present some methods of establishing the infrastructure... 

    Investigation and Comparison of Data Mining Techniques Used for Pharmaceutical Drug Consumption Pattern Prediction

    , M.Sc. Thesis Sharif University of Technology Bastani Allahabadi, Shahrzad (Author) ; Haji, Alireza (Supervisor) ; Fatahi Valilai, Omid (Co-Supervisor)
    Abstract
    Data mining is the process of extracting information from large data sets using algorithms and methods derived from the field of statistics, machine learning and database management systems. Data mining, popularly known as knowledge discovery in big data, enables companies and organizations to make informed decisions by collecting, aggregating, analyzing and accessing company data. The pharmaceutical industry is one of the most important levels of the drug supply chain, which has a significant impact on the healthcare sector of any society. In this context data mining can be used in various procedure such as discovery of a new medicine, sequential registration of clinical trials, combining... 

    Amine modified magnetic polystyrene for extraction of drugs from urine samples

    , Article Journal of Chromatography A ; Volume 1602 , 2019 , Pages 107-116 ; 00219673 (ISSN) Zeinali, S ; Maleki, M ; Bagheri, H ; Sharif University of Technology
    Elsevier B.V  2019
    Abstract
    Polystyrene is one of the best candidates as the extracting medium due to its high stability in different media and acceptable extraction capability. However, the hydrophobic nature and low wettability of polystyrene limits its application to non–polar analytes. To resolve this limitation, in this project, amine groups were chemically attached to the surface of magnetic polystyrene. The resulting hydrophilic magnetic particles were expected to be capable of extracting both polar and non–polar analytes. Non–steroidal anti–inflammatory drugs (NSAIDs) were chosen for testing the applicability of modified magnetic polystyrene according to the importance of their analysis and also their wide... 

    Correlation and prediction of small to large sized pharmaceuticals solubility, and crystallization in binary and ternary mixed solvents using the UNIQUAC-SAC model

    , Article Fluid Phase Equilibria ; Volume 519 , 2020 Yousefi Seyf, J ; Asgari, M ; Sharif University of Technology
    Elsevier B.V  2020
    Abstract
    The recently reported UNIversal QUAsiChemical Segment Activity coefficient (UNIQUAC-SAC) model [developed by Haghtalab and Yousefi Seyf Ind. Eng. Chem. Res. 2015, 54, 8611] provides a practical thermodynamic framework to be used in VLE, LLE, and SLE calculations. The UNIQUAC-SAC model has the advantage of being independent of area (q) and volume (r) structural parameters used in the combinatorial part. While the UNIFAC or UNIFAC-DMD could not apply to the 47% (44 of 94) of the studied molecules because of the undefined groups. Here, the numbers of solvents with identified segment numbers were extended from 82 to 130 with a slight refinement to the previous values. The model parameters... 

    Parametrization of PC-SAFT EoS for solvents reviewed for use in pharmaceutical process design: VLE, LLE, VLLE, and SLE Study

    , Article Industrial and Engineering Chemistry Research ; Volume 61, Issue 23 , 2022 , Pages 8252-8268 ; 08885885 (ISSN) Yousefi Seyf, J ; Asgari, M ; Sharif University of Technology
    American Chemical Society  2022
    Abstract
    The perturbed chain-statistical associating fluid theory equation of state (PC-SAFT EoS) is one of the state-of-the-art thermodynamic models used in the phase equilibrium calculation of associating mixtures, in particular, in the pharmaceutical industry. Accordingly, parametrization of the PC-SAFT EoS for approved solvents reviewed for use in pharmaceutical process design by the International Conference on Harmonization of Technical Requirements for Registration of Pharmaceuticals for Human Use (ICH) was done in the present study. First, the PeC-SAFT EoS model parameters for 41 pure solvents were regressed (of 62 solvents). The available high-quality binary vapor-liquid equilibrium (VLE)... 

    Transport and deposition of pharmaceutical particles in three commercial spacer-MDI combinations

    , Article Computers in Biology and Medicine ; Vol. 54 , 2014 , pp. 145-155 ; ISSN: 00104825 Yazdani, A ; Normandie, M ; Yousefi, M ; Saidi, M. S ; Ahmadi, G ; Sharif University of Technology
    Abstract
    Respiratory drug delivery has been under the research spotlight for the past few decades, mainly due to the high incidence of pulmonary diseases and the fact that this type of delivery offers the highest efficiency for treatment. Despite its invaluable benefits, there are some major drawbacks to respiratory drug delivery, the most important of which being poor delivery efficiency and relatively high drug deposition in undesirable regions, such as the mouth cavity. One way to improve the efficiency of respiratory drug delivery with metered-dose inhalers is placing a respiratory spacer between the inhaler exit and the mouth. It is argued that high drug deposition in the immediate airways of... 

    Discrimination between Alzheimer's disease and control group in MR-images based on texture analysis using artificial neural network

    , Article ICBPE 2006 - 2006 International Conference on Biomedical and Pharmaceutical Engineering, Singapore, 11 December 2006 through 14 December 2006 ; 2006 , Pages 79-83 ; 8190426249 (ISBN); 9788190426244 (ISBN) Torabi, M ; Ardekani, R. D ; Fatemizadeh, E ; Sharif University of Technology
    2006
    Abstract
    In this study, we have proposed a novel method investigates MR-Images for normal and abnormal brains which effected by Alzheimer's Disease (AD) to extract 336 number of different features based on texture analysis. Before applying this algorithm, we have to use a registration method because of variety in size of normal and abnormal images. Consequently, the output of Texture Analysis System (TAS) is a vector containing 336 elements that are features extracted from texture. This vector is considered as the input of the Artificial Neural Network (ANN) which is feed-forward one. The features extracted from the Gray-level Co-occurrence Matrix (GLCM) have been interpreted and compared with normal... 

    Composite of methyl polysiloxane and avocado biochar as adsorbent for removal of ciprofloxacin from waters

    , Article Environmental Science and Pollution Research ; Volume 29, Issue 49 , 2022 , Pages 74823-74840 ; 09441344 (ISSN) Teixeira, R. A ; Lima, E. C ; Benetti, A. D ; Thue, P. S ; Lima, D. R ; Sher, F ; dos Reis, G. S ; Rabiee, N ; Seliem, M. K ; Abatal, M ; Sharif University of Technology
    Springer Science and Business Media Deutschland GmbH  2022
    Abstract
    Two carbon composite materials were prepared by mixing avocado biochar and methyl polysiloxane (MK). Firstly, MK was dissolved in ethanol, and then the biochar was added at different times. In sample 1 (R1), the time of adding biochar was immediately after dissolving MK in ethanol, and in sample 2 (R2), after 48 h of MK dissolved in ethanol. The samples were characterized by nitrogen adsorption/desorption measurements obtaining specific surface areas (SBET) of 115 m2 g−1 (R1) and 580 m2 g−1 (R2). The adsorbents were further characterized using scanning electron microscopy, FTIR and Raman spectroscopy, adsorption of vapors of n-heptane and water, thermal analysis, Bohem titration, pHpzc, and... 

    Combination of multiple classifiers with fuzzy integral method for classifying the EEG signals in brain-computer interface

    , Article ICBPE 2006 - 2006 International Conference on Biomedical and Pharmaceutical Engineering, Singapore, 11 December 2006 through 14 December 2006 ; 2006 , Pages 157-161 ; 8190426249 (ISBN); 9788190426244 (ISBN) Shoaie, Z ; Esmaeeli, M ; Shouraki, S. B ; Sharif University of Technology
    2006
    Abstract
    In this paper we study the effectiveness of using multiple classifier combination for EEG signal classification aiming to obtain more accurate results than it possible from each of the constituent classifiers. The developed system employs two linear classifiers (SVM,LDA) fused at the abstract and measurement levels for integrating information to reach a collective decision. For making decision, the majority voting scheme has been used. While at the measurement level, two types of combination methods have been investigated: one used fixed combination rules that don't require prior training and a trainable combination method. For the second type, the fuzzy integral method was used. The... 

    PASylation enhances the stability, potency, and plasma half-life of interferon α-2a: A molecular dynamics simulation

    , Article Biotechnology Journal ; Volume 15, Issue 8 , 2020 Shamloo, A ; Rostami, P ; Mahmoudi, A ; Sharif University of Technology
    Wiley-VCH Verlag  2020
    Abstract
    In this study, the effectiveness of PASylation in enhancing the potency and plasma half-life of pharmaceutical proteins has been accredited as an alternative technique to the conventional methods such as PEGylation. Proline, alanine, and serine (PAS) chain has shown some advantages including biodegradability improvement and plasma half-life enhancement while lacking immunogenicity or toxicity. Although some experimental studies have been performed to find the mechanism behind PASylation, the detailed mechanism of PAS effects on the pharmaceutical proteins has remained obscure, especially at the molecular level. In this study, the interaction of interferon α-2a (IFN) and PAS chain is... 

    Electrochemical determination of clozapine on MWCNTs/new coccine doped ppy modified GCE: An experimental design approach

    , Article Bioelectrochemistry ; Volume 90 , 2013 , Pages 36-43 ; 15675394 (ISSN) Shahrokhian, S ; Kamalzadeh, Z ; Hamzehloei, A ; Sharif University of Technology
    2013
    Abstract
    The electrooxidation of clozapine (CLZ) was studied on the surface of a glassy carbon electrode (GCE) modified with a thin film of multiwalled carbon nanotubes (MWCNTs)/new coccine (NC) doped polypyrrole (PPY) by using linear sweep voltammetry (LSV). The pH of the supporting electrolyte (D), drop size of the cast MWCNTs suspension (E) and accumulation time of CLZ on the surface of modified electrode (F) was considered as effective experimental factors and the oxidation peak current of CLZ was selected as the response. By using factorial-based response-surface methodology, the optimum values of factors were obtained as 5.44, 10 μL and 300 s for D, E and F respectively. Under the optimized...