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1

Pierro, Picci, and Gold Richard H, eds. Bone tumors: Clinical, radiologic, and pathologic correlations. Philadelphia: Lea & Febiger, 1989.

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2

1957-, Swanson Paul E., ed. Cutaneous adnexal tumors: A guide to pathologic diagnosis. Chicago: ASCP Press, 1991.

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3

E, Voest Emile, and D'Amore Patricia A, eds. Tumor angiogenesis and microcirculation. New York: Dekker, 2001.

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4

D, Marmé, and Fusenig N. E, eds. Tumor angiogenesis: Basic mechanisms and cancer therapy. New York: Springer, 2007.

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5

Adler, C. P. Primary bone tumors and tumorous conditions in children: Pathologic and radiologic diagnosis. London: Springer-Verlag, 1993.

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6

Kramer, Ivor R. H. Histological typing ofodontogenic tumours. 2nd ed. Berlin: Springer-Verlag, 1992.

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7

MD, Wu Maoxin, Penault-Llorca Frédérique, Deligdisch Liane, and Altchek Albert 1925-, eds. Early pathologic diagnosis of gynecologic cancer including a clinician's view. Hackensack, NJ: World Scientific, 2009.

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8

J, Cote Richard, ed. Immunomicroscopy: A diagnostic tool for the surgical pathologist. 2nd ed. Philadelphia: Saunders, 1994.

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9

J, Cote Richard, ed. Immunomicroscopy: A diagnostic tool for the surgical pathologist. 3rd ed. Philadelphia: Saunders, 2006.

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10

American College of Veterinary Pathologists. Annual Meeting. Neoplasia: Forty-seventh Annual Meeting of the American College of Veterinary Pathologists : December 2-December 6, 1996, Sheraton Seattle Hotel & Towers, Seattle, Washington. [S.l: s.n., 1997.

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11

Anatomic, Pathology Slide Seminar (52nd 1986 Orlando Fla ). Tumors of soft tissue: Based on the proceedings of the 52nd Annual Anatomic Pathology Slide Seminar of the American Society of Clinical Pathologists, October 2 and 3, 1986, Orlando Marriott Hotel, Orlando, Florida. Chicago: American Society of Clinical Pathologists Press, 1987.

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12

Enrico, Crivellato, and SpringerLink (Online service), eds. Mast Cells and Tumours: From Biology to Clinic. Dordrecht: Springer Science+Business Media B.V., 2011.

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13

Lack, Ernest E. Pathology of the pancreas, gallbladder, extrahepatic biliary tract, and ampullary region. Oxford: Oxford University Press, 2003.

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14

Marialuisa, Melli, and Parente Luca, eds. Cytokines and lipocortins in inflammation and differentiation: Proceedings of the International Conference on Molecular and Cellular Biology of IL-1, TNF, and Lipocortins in Inflammation and Differentiation, held in Siena, Italy, October 22-25, 1989. New York, NY: Wiley-Liss, 1990.

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15

Anatomic Pathology Slide Seminar (53rd 1987 New Orleans, La.). Tumors of the breast: Based on the proceedings of the 53rd Annual Anatomic Pathology Slide Seminar of the American Society of Clinical Pathologists, October 29 and 30, 1987, Sheraton New Orleans Hotel, New Orleans, Louisiana. Chicago: ASCP Press, 1988.

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16

R, Hart William, Young Robert H. 1950-, Dail David H, and American Society of Clinical Pathologists., eds. Tumors and related lesions of the female genital tract: Based on the proceedings of the 56th annual Anatomic Pathology Slide Seminar of the American Society of Clinical Pathologists, October 25 and 26, 1990, Dallas Texas. Chicago: ASCP Press, 1991.

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17

Arie, Perry, and Brat Daniel J, eds. Practical surgical neuropathology: A diagnostic approach. Philadelphia, PA: Churchill Livingstone/Elsevier, 2010.

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18

(Susanne), Pitz S., and SpringerLink (Online service), eds. Primary Optic Nerve Sheath Meningioma. Berlin, Heidelberg: Springer-Verlag, 2008.

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19

Athanasou, Nikos. Colour atlas of bone, joint, and soft tissue pathology. Oxford: Oxford University Press, 1999.

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20

Central Nervous System Pathologies in Hereditary Tumor Syndromes. Nova Science Publishers, Incorporated, 2023.

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21

Central Nervous System Pathologies in Hereditary Tumor Syndromes. Nova Science Publishers, Incorporated, 2023.

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22

Tumor dormancy, quiescence, and senescence: Aging, cancer, and noncancer pathologies. Dordrecht: Springer, 2014.

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23

Hayat, M. A. Tumor Dormancy, Quiescence, and Senescence, Volume 1: Aging, Cancer, and Noncancer Pathologies. Springer, 2016.

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24

Hayat, M. A. Tumor Dormancy, Quiescence, and Senescence, Volume 1: Aging, Cancer, and Noncancer Pathologies. Springer, 2013.

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25

Hayat, M. A. Tumor Dormancy, Quiescence, and Senescence, Volume 2: Aging, Cancer, and Noncancer Pathologies. Springer, 2016.

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26

Hayat, M. A. Tumor Dormancy, Quiescence, and Senescence, Volume 2: Aging, Cancer, and Noncancer Pathologies. Springer, 2013.

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27

Hayat, M. A. Tumor Dormancy, Quiescence, and Senescence, Volume 1: Aging, Cancer, and Noncancer Pathologies. Springer London, Limited, 2013.

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28

Hayat, M. A. Tumor Dormancy, Quiescence, and Senescence, Vol. 3: Aging, Cancer, and Noncancer Pathologies. Springer, 2014.

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29

Hayat, M. A. Tumor Dormancy, Quiescence, and Senescence, Vol. 3: Aging, Cancer, and Noncancer Pathologies. Springer, 2016.

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30

Tumor Dormancy, Quiescence, and Senescence, Vol. 3: Aging, Cancer, and Noncancer Pathologies. Springer, 2014.

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31

Tumor Dormancy, Quiescence, and Senescence, Vol. 3: Aging, Cancer, and Noncancer Pathologies. Springer London, Limited, 2014.

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32

Sherman, Mark E., Melissa A. Troester, Katherine A. Hoadley, and William F. Anderson. Morphological and Molecular Classification of Human Cancer. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780190238667.003.0003.

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Accurate and reproducible classification of tumors is essential for clinical management, cancer surveillance, and studies of pathogenesis and etiology. Tumor classification has historically been based on the primary anatomic site or organ in which the tumor occurs and on its morphologic and histologic phenotype. While pathologic criteria are useful in predicting the average behavior of a group of tumors, histopathology alone cannot accurately predict the prognosis and treatment response of individual cancers. Traditional measures such as tumor stage and grade do not take into account molecular events that influence tumor aggressiveness or changes in the tumor composition during treatment. This chapter provides a primer on approaches that use pathology and molecular biology to classify and subclassify cancers. It describes the features of carcinomas, sarcomas, and malignant neoplasms of the immune system and blood, as well as various high-throughput genomic platforms that characterize the molecular profile of tumors.
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33

Theeler, Brett J., and Mark R. Gilbert. Primary Central Nervous System Tumors. Oxford University Press, 2017. http://dx.doi.org/10.1093/med/9780199937837.003.0129.

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Ependymomas are rare primary central nervous system (CNS) tumors that are thought to arise from ependymal cells lining the ventricular system located throughout the CNS. Ependymomas occur in all age groups but are more common in the pediatric population. Ependymomas typically present as mass lesions within the ventricular system, brain or spinal cord parenchyma. As with most central nervous system tumors, pathologic evaluation is required for definitive diagnosis. Ependymomas are typically treated with a combination of surgery and radiotherapy although this varies depending on tumor location, tumor grade, patient age, extent of tumor resection, and other pretreatment factors. Recent molecular studies demonstrate molecularly defined tumor heterogeneity that appears to have a region-specific pattern. Translating the emerging molecular profiles of ependymomas into improved treatment strategies is the primary goal of ongoing research efforts.
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34

Koss, Michael N., William D., M.D. Travis, and Thomas V. Colby. Tumors of the Lower Respiratory Tract (Atlas of Tumor Pathology 3rd Series). American Registry of Pathology, 1995.

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35

Bertoni, Franco, Eduardo Santini-Araujo, Ricardo K. Kalil, and Yong-Koo Park. Tumors and Tumor-Like Lesions of Bone: For Surgical Pathologists, Orthopedic Surgeons and Radiologists. Springer, 2015.

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36

Bertoni, Franco, Eduardo Santini-Araujo, Ricardo K. Kalil, and Yong-Koo Park. Tumors and Tumor-Like Lesions of Bone: For Surgical Pathologists, Orthopedic Surgeons and Radiologists. Springer, 2016.

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37

Bertoni, Franco, Eduardo Santini-Araujo, Ricardo K. Kalil, and Yong-Koo Park. Tumors and Tumor-Like Lesions of Bone: For Surgical Pathologists, Orthopedic Surgeons and Radiologists. Springer, 2015.

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38

Bertoni, Franco, Eduardo Santini-Araujo, and Ricardo K. Kalil. Tumors and Tumor-Like Lesions of Bone: For Surgical Pathologists, Orthopedic Surgeons and Radiologists. Springer, 2015.

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39

Appelman, Henry D., and Klaus J. Lewin. Tumors of the Esophagus & Stomach (Atlas of Tumor Pathology, 3rd Series, Vol. 18). American Registry of Pathology, 1996.

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40

Gonzalez-Perez, Ruben R., and Bo R. Rueda. Tumor Angiogenesis Regulators. Taylor & Francis Group, 2013.

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41

Gonzalez-Perez, Ruben R., and Bo R. Rueda. Tumor Angiogenesis Regulators. Taylor & Francis Group, 2013.

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42

Gonzalez-Perez, Ruben R., and Bo R. Rueda. Tumor Angiogenesis Regulators. Taylor & Francis Group, 2013.

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43

Gonzalez-Perez, Ruben R. Tumor Angiogenesis Regulators. Taylor & Francis Group, 2013.

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44

Hammar, Samuel P., Thomas V. Colby, and David H. Dail. Pulmonary Pathology - Tumors. Springer, 2011.

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45

Hammar, Samuel P., Thomas V. Colby, and David H. Dail. Pulmonary Pathology -- Tumors. Springer London, Limited, 2012.

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46

Braun, Armin C. Morphology and Physiology of Plant Tumors: Pathologie des Protoplasmas. Springer London, Limited, 2012.

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47

Life Algorithm: Rapid Healing of Tumors, Other Pathologies or Simple Affections. Independently Published, 2020.

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48

Montgomery/AAro. Clinical Pathology of Soft-Tissue Tumors. Informa Healthcare, 2001.

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49

History of research on tumor angiogenesis. [Dordrecht]: Springer, 2009.

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50

Tumor angiogenesis: From molecular mechanisms to targeted therapy. Weinheim: Wiley-Blackwell, 2010.

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