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354 Herbal Pharmacopeia
Phytosomes make use of the power of liposomes and hence enhances the absorption & bioavail­ability of herbal drugs. Phytosome technology is applicable to help facilitate the delivery of different herbal drugs for various diseases. The pharmacokinetic and pharmacodynamic parameters can be improved via the use of phytosomes (Mahadev B. Khanzole, 2020).
Phytosomes enhances the bioavailability of phytoconstituents, especially hydrophilic groups containing herbal drugs, and hence increases drug efcacy. Phytosomes have been tested by differ­ent research groups for comparing the bioavailability of the herbal compounds alone as well as in phytosome form. Here are a few phytosome based herbal drugs available on the market. Ginkgo biloba extract, olive oil compounds, silymarin, ginsenosides, green tea catechins, anthocyanins and other avonoids, curcumin, and visnadine (Prasad, S. B 2016).

16.2.7 dnA nAnoCArriers for tArgeted drug delivery

DNA nanostructures, also called DNA origami, make use of the basic building blocks, i.e. nucleo­tides. The nucleotides work as basic building material that self- assembles to form special kinds of nano- scale structures (see Figure 16.1g). The resulting DNA nanostructure may be 1D, 2D, or 3D molecular structures with controlled shapes and sizes. The Watson- Crick base pairing is the logic behind the design of the DNA origami structure. DNA origami is designed in software such as cad­nano and the nano structure is made up of a large Scaffold (M13 phage genome) and short staple strands (Castro et al., 2011).
A number of webservers have been introduced over the past few years to facilitate the origami design. Desired structure and shape and size can be designed in the software, depending upon the requirements. The most notable servers which contributed to this eld of science are cadnano and OxDNA. Once a desired structure is designed, it is large enough to carry drugs to the target site. Keeping in view that the basic structure is solely made up of nucleotides, its nonimmunogenic. DNA nanostructures has vast applications in the pharmaceutical and biomedical elds. DNA origami can be designed with spaces or voids in its structure that can excellently hold the drug cargo without any external disturbance or effect. Thus, DNA nanostructures serves as a good delivery vehicle for many types of drug molecules (Shishparenok et al., 2023).
DNA nanostructures serve as a versatile platform for a large number of application like drug delivery, biomaging, and theranostics. The main features of DNA origami include:
1. Improved drug effectiveness through effective solubility, circulation in body uids, and
cellular uptake.
2. Customizable size, shape, and chemical properties because DNA origami can be merged
with different chemistries and surface modications such as antibodies, proteins, nucleic acid aptamers, drugs, and other functional groups. This makes DNA nanostructures a ver­satile platform.
3. Controlled drug release mechanisms at target site with low off- targeting.
4. Size- dependent organ distribution of cargo and effective tumor targeting.
These features make DNA nanostructures/origami a promising tool for targeted drug delivery and other therapeutic applications (Kumar et al., 2023).
Cancer therapy, targeted gene therapy, vaccine delivery, and bioimaging are among the major areas where DNA nanotechnology is currently being applied at the research scale. Personalized medicines is another promising area where DNA nanocarriers offer the solution to the challenges posed by conventional drug delivery systems (Zheng et al., 2022).
Since DNA nanotechnology is still in its initial stages of development, it has a long way to go. Keeping in view the potential of DNA nanotechnology, the eld of herbal drug delivery will benet from it.
Targeted Delivery Systems for Herbal Drugs 355

16.2.8 AptAmers for drug tArgeting

Aptamers are short stretches of single- stranded DNA or RNA. Previously, had been thought that nucleic acids only perform genetic roles. A few decades ago, however, scientist reconsidered this theory and stated that nucleic acids can also perform other functions. It was at this point that the term functional nucleic acids was introduced. The binding of nucleic acids to ligands laid the foundation of this eld of science (Nimjee et al., 2017).
These are now termed aptamers and they can perform functions such as ligand binding. At pres­ent, the discovered aptamers can bind with a vast range of targets, starting from small organic mol­ecules, inorganic groups to complex protein, and even entire cells.
Since aptamers can bind with the receptors on the cell membrane and facilitate themselves or conjugated nanostructures to enter the cells. Hence, aptamers can be used as excellent targeting ligands for novel drug delivery systems (He et al., 2018).
Aptamers can precisely deliver functional nucleic acids to target cells. They bind specically to cell surface proteins, ensuring accurate delivery (Xie et al., 2023). Aptamers can improve the effec­tiveness of natural compounds in targeted drug delivery. They have many advantages like stability and simple synthesis and a wide range of targets. Combining natural products with aptamer- based delivery systems offers potential for broader applications in medicine (Joana Gamboa, 2024).

16.2.9 miCrospHeres And miCropellets

Microspheres are tiny spherical particles, with sizes ranging from 1 to 50 μm. It offers a promis­ing approach to herbal drug delivery. These special microparticulates enhances drug concentration at the target site while minimizing the unwanted effects. Microspheres enhance the efcacy of the drug and hence patient compliance by prolonging the drug action as well as keeping plasma concen­trations steady. It potentially reduces the overall herbal drug dosage and minimize side effects by lowering off- targeting (Elkordy et al., 2021).
To date, different herbal ingredients have been successfully formulated into microspheres. Rutin, camptothecin, and quercetin are the prominent examples of this application. Recent studies have made use of the variable microsphere, the immune and the magnetic microspheres. Immune microspheres incorporate the coating of antigen or antibody on the polymer surface (Sarangi and Padhi, 2018).

16.3 TARGETING STRATEGIES AND MECHANISMS

Nature has equipped plants with a huge array of secondary metabolites which serve two major roles: defense against predators and signaling within plant body. Generally speaking, these secondary metabolites demonstrate a huge number of biological and pharmacological properties. The early civilizations started using plant extracts and exploiting specic plant products and extracts for treat­ing a number of ailments. Secondary metabolites exhibit two kind of bioactivities: a) specic and b) nonspecic.
Specic Bioactivities The secondary metabolites which interact with the specic targets within or on the surface of cells, such as membranes, proteins or nucleic acid molecules. For example, alkaloids on receptors of neurotransmitters.
Nonspecic Bioactivities Secondary metabolites like phenolics and terpenoids are less specic in their actions and attack large number of proteins by building different bonds like hydrogen, ionic bonds and hydrophobic bonds, which in turn change the 3D structures of proteins and, as a result, modulate their bioactivities (Wink, 2015).
Due to these variations and diversities, herbal drugs follow different mechanisms for targeting and hence their mode of actions differ.
356 Herbal Pharmacopeia

16.3.1 ligAnd- reCeptor mediAted tArgeting

There is a difculty in getting drugs into the brain because of a protective layer called the blood– brain barrier. A special type of chemistry, called receptor- ligand chemistry, is used to help drugs cross this barrier and reach the brain. This could be useful for treating brain diseases like Alzheimer's, Parkinson's and Lou Gehrig's disease (Anthony et al., 2021).
The development of multi- target directed ligands is a promising approach for the treatment of complex diseases. It focuses on multi- protein- coupled receptors as key targets for multi- target directed ligands due to their involvement in various human diseases (Huang, et al., 2021).
Ligand- decorated nanoparticles are used for targeted drug delivery in cancer therapy as they can selectively target cancer cells without harming healthy tissues (Bandyopadhyay et al. 2023). By incorporating specic ligands onto the polymeric nanomicelles (PNMs), they can bind to receptors on the surface of target cells, facilitating their uptake and improving therapeutic efcacy. This receptor- mediated targeting approach can help overcome the limitations of passive targeting and enhance the delivery of drugs to specic tissues and organs (Agwa et al., 2023).

16.3.2 Antibody drug ConjugAtes

Antibody drug conjugates have made signicant advancements over the past decade. They are a type of chemotherapy that combines a cytotoxic agent with a monoclonal antibody through a spacer arm. While only one antibody drug conjugate had been approved by 2009, there are now nine approved ADCs and over 80 in clinical trials (Gogia et al., 2023).
Antibody- drug conjugates (ADCs) are a promising cancer treatment that combines a monoclonal antibody with a cytotoxic payload (Lu et al., 2023).
ADCs have evolved from broadly targeting cancer cells to precisely targeting them and bolstering the immune system to combat drug resistance. ADCs were initially developed in preclinical trials in 20th century & the second generation addressed the issue through innovative antibody modication techniques. At present, a third generation of ADCs is in development (Song et al. 2023a, 2023b).
ADCs have revolutionized targeted cancer therapy. Despite challenges, recent advancements have led to increased development and approvals. Novel conjugation and linker technologies are expanding the scope of antibody drug conjugates (ADCs) (Bulger et al., 2023).

16.3.3 AptAmers for A tArgeted delivery system for HerbAl drugs

Aptamers are single- stranded nucleic acids or short peptides, ranging in size from 15 to 80 nucle­otides (ssDNA and ssRNA, XNA or peptide aptamers). Aptamers were discovered in the 1990s and selected or evolved through a process called Systemic Evolution of Ligands with Exponential Enrichment (SELEX). Aptamers can bind selectively and specically to proteins, DNA, RNA, small molecules, carbohydrates, vitamins, metabolites, drugs, and any other ligand. Aptamer can even bind whole cells or target a specic organelle inside cells or surfaces of bacteria and other microor­ganisms (Gold et al., 2012). Aptamers are comparable to antibodies in their binding behavior. But antibodies are more costly to produce at industrial scale where aptamers are cost- effective. However, despite all the research and development in the promising domain of aptamers, they have still a long way to go to enter into real competition with the antibodies in the global market (Liu et al., 2022). Aptamers have a vast number of applications:
a. It can act as a binder against ligands (Gold et al., 2012). b. It can work as direct biologic therapeutics (Wang et al., 2023a) c. It can be used as an imaging molecule in diagnostics (which can be detected based on chro-
mogenic material like uorescence labelling attached to aptamer bound to specic target site in a sample) (Liu et al., 2022).
Targeted Delivery Systems for Herbal Drugs 357
d. It plays a role in drug delivery mechanisms, as a cargo carrier molecule. e. Aptamers can also work as binding to nanomaterials to make complex systems for drug
delivery (Liu et al., 2022).
Based on these signicant applications, aptamers open a window on research in drug designing, drug delivery, drug targeting, the diagnosis and prognosis of diseases and a lot more is yet to come (Wang et al., 2023b).
Keeping in view the challenges of herbal medicines, e.g. efcacy, targeting and retention, aptam­ers can be effectively utilized for addressing the aforementioned issues the potential of aptamers has the answer. Recently, many groups have conducted studies in this regard, by merging the power of aptamers to counter the challenges of plant- based therapeutics. One study, conducted by Gamboa etal. (2024), recently offered a thorough account of the use of aptamers in drug delivery for plant herbal medicines. The study analyzed published literature on the above said topic from January 1, 2018 to December 31, 2023. Their analysis concluded 43 such studies, which made use of aptamers for herbal drugs delivery. In the same study it was demonstrated that natural compounds extracted from plants, with known therapeutic potential but with low expression in clinical practice, were more signicantly used for aptamer- related studies (Gamboa et al., 2024).
In these studies, herbal compounds were logically loaded into different kind of nanoparticles and the complexes were modied with different aptamers (see Figure 16.2). This approach was
FIGURE 16.2 Aptamer-based therapeutics and the variety of nanomaterials utilized for drug delivery.
358 Herbal Pharmacopeia
promising to overcome herbal drugs’ generic issues and problems, like bioavailability, solubility, and stability and tissue permeation with extended retention time (Liu et al., 2022). This slightly unex­plored area can be explored further with the addition of more innovative technologies like combining herbal drugs, aptamers, and nanobiotechnology for more effective and novel drug delivery systems.

16.3.4 stimuli- responsive delivery systems

Different targeting strategies and mechanisms are useful for drug delivery systems. The nanomaterials (e.g polymers, liposomes, micelles, etc.) encapsulate drugs and then external stimuli, such as tempera­ture, pH and so on trigger drug release. One excellent method for targeting cancer cells is stimuli­responsive medication delivery, which makes use of particular characteristics and triggers. Choosing nanomaterials with efcient drug encapsulation and taking into account the stimuli that would cause drug release at the tumor location are essential. With this strategy, side effects could be reduced and therapeutic efcacy could be increased through the possibility of precise and targeted therapy.
Nanomaterials encapsulate drugs and then target specic sites. Biological ligands facilitate active targeting and uptake. Thus, it is also another effective mechanism. The strategies that can be adopted are the following: Optimize nanoparticle properties, use biological ligands & prioritize in vivo stud­ies (Yijie Wu, 2019); Stimuli- responsive drug delivery systems to release drugs only in tumor envi­ronments, maximizing effectiveness in cancer treatment (Sun and Davis, 2021). Ligand- based active therapy is a promising approach for treating various cancers and it also improves targeting.
16.4 APPLICATIONS OF TARGETED DRUG DELIVERY SYSTEMS
FOR HERBAL DRUGS

16.4.1 HerbAl drugs for CommuniCAble diseAses

Communicable diseases, those transmissible from person to person, pose a persistent global health challenge. Viruses, in particular, have demonstrated an alarming capacity to mutate and evade immune responses, necessitating a continuous search for effective countermeasures.
Polyphenols, a vast class of naturally occurring compounds, are a promising strategy to combat these infectious diseases. Polyphenols, which number more than 10,000, are ubiquitous in the plant kingdom. Viral infections, such as COVID- 19, SARS, and MERS, are all communicable diseases and spread from person to person. Thus, polyphenols which are derived from plants are used as herbal medicines to treat the communicable diseases.
Herbal drugs, with their rich phytochemical prole, offer a promising avenue for exploring the therapeutic potential of polyphenols. These plant- based remedies have been used for centuries in traditional medicine systems to cure communicable diseases. For example, thyme, oregano, mint, and basil have been employed for centuries to alleviate and combat contagious diseases (Garcia, 2020).
Many plants contain natural substances that work together to ght viruses and bacteria that cause communicable diseases. We can cure E. coli infections and skin infections through the use of herbal medicines.

16.4.2 HerbAl drugs for CommuniCAble And non- CommuniCAble diseAses

Non- communicable diseases are those which cannot be transmitted from person to person.
Natural medicine has ancient roots, with records dating back to 2600 BCE in Mesopotamia. Key historical documents showcase the widespread use of plant- based remedies:
1. Mesopotamian records(2400 BCE): ~1000 plant- derived compounds
2. Egyptian Ebers Papyrus (1500 BCE): >700 natural drugs
Targeted Delivery Systems for Herbal Drugs 359
3. Chinese Materia Medica (1100 BCE): 52 medicinal preparations
4. Indian Ayurvedic texts (1000 BCE): >800 natural extracts
Notably, Hippocrates incorporated herbal healing (phytotherapy) into his medical practice, dem­onstrating the enduring inuence of natural remedies across diverse ancient cultures and medical traditions (Shaito et al., 2020).
The World Health Organization's Traditional Medicine Centers identied 122 key medicinal compounds derived from just 94 plant species. These compounds are used similarly across different countries for traditional treatments. For example:
a. Galegine, extracted from Galega ofcinalis L. (goat's rue), led to the development of met-
formin and other antidiabetic drugs.
b. Papaverine, from Papaver somniferum (the opium poppy), inspired the creation of vera-
pamil, a medication for high blood pressure.
Despite a shift towards synthetic drug development in the late 1980s, natural products have regained prominence in drug discovery due to facts such as advances in scientic research demonstrating their efcacy in disease prevention and treatment. Economic accessibility among communities and perceived safety by general public, especially in developing countries. There is unparalleled biologi­cal activity and structural diversity compared to synthetic libraries, and huge potential for optimiza­tion with minor structural changes.
However, challenges remain such as the need for interdisciplinary approaches in natural product­based drug development for communicable diseases. There are concerns about herb–drug interac­tions and safety proles in living systems. There is a need for more focus on structural modications to improve potency and pharmacokinetics for herbal drugs. African herbs that interact with the cytochrome P450 (CYP) enzyme system & P- glycoprotein (P- gp), which are crucial for drug metab­olism and transport, can also affect the efcacy of drugs used for the prevention of non- communicable diseases such as kidney and liver diseases, heart diseases, and inammatory processes and neuro­logical diseases (Ondieki et al., 2017).
Overall, natural products remain a rich, largely untapped source for drug leads, offering ‘privi­leged scaffolds’ for drug design, despite only a fraction of nature’s biodiversity being tested for biological activity.
Antioxidants are also crucial in the prevention of non- communicable diseases, such as aging, kidney and liver disease, heart diseases, inammatory processes and neurological diseases.

16.5 CONCLUSION AND FUTURE PERSPECTIVE

In the era of AI, there have been advancements in research in the domains of drug discovery, drug delivery, natural products, drug repurposing, the identication of new herbal compounds, the discovery of new drug targets within human bodies, nanobiotechnology, metabolomics and bioinformatics. Scientists from these multidisciplinary areas of research are joining hands together and nding new avenues and possibilities to bring more herbal drugs to the market. The limitations associated with herbal compounds and drugs such as poor pharmacokinetics, lower specicity and side effects like potential toxicity can be effectively encountered through the strategic use of precise combinations of nanomaterials, targeting molecules like antibodies and aptamers. In the years to come, we expect to see more studies on herbal drugs delivery in which more complex chemistries will be utilized for the delivery of herbal drugs to target sites with lower side effects and off- targeting.
Given the pace of developments and the way in which AI is being integrated into daily lives, AI will obviously play a future role as a catalyst in herbal drug discovery and drug delivery.
360 Herbal Pharmacopeia

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