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Hows and Whys of Tumor-Seeking Dyes
Syed Muhammad Usama1, Kevin Burgess1
1Department of Chemistry, Texas A&M University, Box 30012, College Station, Texas 77842, United States.
Abstract:
Active targeting uses molecular fragments that bind receptors overexpressed on cell surfaces to deliver cargoes, and this selective delivery to diseased over healthy tissue is valuable in diagnostic imaging and therapy. For instance, targeted near-infrared (near-IR) dyes can mark tissue to be excised in surgery, and radiologists can use active targeting to concentrate agents for positron emission tomography (PET) in tumor tissue to monitor tumor metastases. Selective delivery to diseased tissue is also valuable in some treatments wherein therapeutic indexes (toxic/effective doses) are key determinants of efficacy. However, active targeting will only work for cells expressing the pivotal cell surface receptor that is targeted. That is a problem because tumors, even ones derived from the same organ, are not homogeneous, patient-to-patient variability is common, and heterogeneity can occur even in the same patient, so monotherapy with one actively targeted agent is unlikely to be uniformly effective. A particular category of fluorescent heptamethine cyanine-7 (Cy-7) dyes, here called tumor seeking dyes, offer a way to circumvent this problem because they selectively accumulate in any solid tumor. Furthermore, they persist in tumor tissue for several days, sometimes longer than 72 h. Consequently, tumor seeking dyes are near-IR fluorescent targeting agents that, unlike mAbs (monoclonal antibodies), accumulate in any solid lesion, thus overcoming tumor heterogeneity, and persist there for long periods, circumventing the rapid clearance problems that bedevil low molecular mass drugs. Small molecule imaging agents and drugs attached to tumor-seeking dyes have high therapeutic indices and long residence times in cancer cells and tumor tissue. All this sounds too good to be true. We believe most of this is true, but the controversy is associated with how and why these characteristics arise. Prior to our studies, the prevailing hypothesis, often repeated, was that tumor seeking dyes are uptaken by organic anion transporting polypeptides (OATPs) overexpressed on cancer cells. This Account summarizes evidence indicating tumor seeking Cy-7 dyes have exceptional accumulation and persistence properties because they covalently bind to albumin in vivo. That adduct formation provides a convenient way to form albumin-bound pharmaceuticals labeled with near-IR fluorophores which can be tracked in vivo. This understanding may facilitate more rapid developments of generally applicable actively targeted reagents.
Insights
Tumor-seeking dyes, a type of near-infrared fluorescent agent, accumulate in and persist within any solid tumor, overcoming heterogeneity. These dyes function by covalently binding to albumin in vivo, enhancing their diagnostic and therapeutic potential.
Area of Science:
- Biomedical imaging and targeted therapy
- Organic chemistry and pharmacology
Background:
- Active targeting delivers agents to diseased tissues via cell surface receptors, valuable for imaging and therapy.
- Tumor heterogeneity and patient variability limit the efficacy of traditional active targeting agents like monoclonal antibodies.
- Existing targeted agents face challenges with rapid clearance and specificity due to tumor microenvironment variations.
Purpose of the Study:
- To investigate the mechanism behind the selective accumulation and persistence of heptamethine cyanine-7 (Cy-7) dyes in solid tumors.
- To challenge the prevailing hypothesis that organic anion transporting polypeptides (OATPs) are solely responsible for dye uptake.
- To propose and support the hypothesis that covalent binding to albumin in vivo drives the unique properties of these tumor-seeking dyes.
Main Methods:
- Review and summarization of existing evidence regarding the in vivo behavior of tumor-seeking Cy-7 dyes.
- Analysis of studies investigating the interaction of these dyes with biological molecules, particularly albumin.
- Comparison of the proposed albumin-binding mechanism with the previously accepted OATP-mediated uptake hypothesis.
Main Results:
- Tumor-seeking Cy-7 dyes demonstrate selective accumulation in all tested solid tumors, irrespective of receptor expression.
- These dyes exhibit prolonged persistence in tumor tissue, remaining for several days (often >72 hours).
- Evidence suggests that covalent binding to albumin in vivo is the primary reason for these exceptional accumulation and persistence characteristics.
Conclusions:
- The unique tumor-seeking properties of Cy-7 dyes stem from their ability to form covalent adducts with albumin.
- This albumin-binding mechanism overcomes limitations of traditional active targeting, including tumor heterogeneity and rapid clearance.
- Understanding this mechanism facilitates the development of novel albumin-bound, near-infrared fluorescent pharmaceuticals for improved cancer diagnostics and therapeutics.
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