IP Library Granted Patent US 9,074,980
Granted Patent B2
US 9,074,980 · App. 13/278,716 · Granted Jul 7, 2015

Method for the toxicity assessments of nano-materials

Inventors: Tae-Hyun Yoon (Seoul, KR); Song-Hee Lee (Seoul, KR); Dong-Wook Kwon (Seoul, KR); Jong-Hoon Park (Seoul, KR); Hyun-Ju Yoo (Seoul, KR); Hyun-Woo Nho (Seoul, KR)
Assignee: INDUSTRY-UNIVERSITY CORPORATION FOUNDATION HANYANG UNIVERSITY
G01N15/1475G01N15/04G01N15/147G01N15/1484G01N21/6458G01N21/648G01N33/5014G01N2015/0038G01N2015/0092G01N2015/1075G01N2015/1486G01N2015/1497G01N2510/00
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Quick Facts
Patent No.
US 9,074,980
App. No.
13/278,716
Granted
Jul 7, 2015
Kind
B2
Abstract

The present invention relates to a method for the toxicity assessment of nano-materials, and more specifically, it is relates to an objective, reproducible and accurate assessment method for the unbiased toxicity testings of nano-materials, which minimize artifacts of the conventional methods for the toxicity assessment of the nano-materials by considering the dose characteristics of the nano-material itself using Selective multi-Plane Illumination Microcopy (SPIM); and the response characteristics of the nano-material using the improved or novel cellular responses assessment methods for nano-materials (e.g., modified MTT assay using image cytometric analysis, normal-inverted exposure apparatus, and modified flow cytometry), and a system and an apparatus thereof.

Claims (21)

1. A method for toxicity assessment of nano-materials comprising:

exposing the nano-materials to a cell medium including cells;

analyzing dosimetry of the nano-materials using Selective Multi-Plane Illumination Microscopy (mSPIM), and

analyzing cellular responses to the nano-materials using a normal and inverted exposure apparatus.

2. The method for the toxicity assessment of nano-materials of claim 1 , further comprising conducting image cytometry.

3. The method for the toxicity assessment of nano-materials of claim 1 , wherein the normal and inverted exposure apparatus comprises a microfluidic chip.

4. The method for the toxicity assessment of nano-materials of claim 1 , wherein the normal and inverted exposure apparatus is installed to expose a cultured cell layer to the nano-materials by orienting the cultured cell layer face up to measure cellular responses caused by both active and passive intake of nano-materials in a normal exposure mode, or by orienting the cultured cell layer face down to measure cellular responses caused only by active intake of the nano-materials in an inverted exposure mode, the normal and inverted exposure apparatus used for effective dose correction of the nano-materials.

5. The method for the toxicity assessment of nano-materials of claim 2 , wherein the image cytometry is conducted by a method selected from a group consisting of an absorption method and fluorescence method.

6. The method for the toxicity assessment of nano-materials of claim 5 , wherein

the absorption method is conducted by using an absorption dye selected from a group consisting of: MTT (3-(4,5-dimethyl thiazol-2-yl)-2,5-diphenyl tetrazolium bromide)), MTS (5-(3-caroboxymethoxyphenyl)-2H-tetra-zolium inner salt), WST (4-[3-(4-Iodophenyl)-2(4-nitrophenyl)-2H-5-tetrazolio]1,3-benzene disulfonate) and trypan blue.

7. The method for the toxicity assessment of nano-materials of claim 6 , wherein cell image analysis is conducted by obtaining a bright field cellular image with an MTT formazan absorbance.

8. The method for the toxicity assessment of nano-materials of claim 5 , wherein

the fluorescence method is conducted by using an organic fluorescent dye or a fluorescent protein.

9. A method of toxicity assessment of nano-materials comprising:

exposing the nano-materials to a cell medium including cells;

measuring the concentration and the size distribution of the nano-materials dispersed in the cell medium using Selective Multi-Plane Illumination Microscopy (mSPIM);

measuring the change in concentration and size distribution over time using mSPIM and calculating the agglomeration and sedimentation coefficients of the nano-materials in the cell medium;

measuring the concentration and hydrodynamic size distribution of the nano-materials accumulated in the cells after exposure to the cell medium using mSPIM and calculating the cellular uptake of the nano-materials in the cells;

inducing crystal formation or cell staining by injection of absorption dyes in cells exposed to the nano-materials to show apoptosis;

taking images of the cells over time to show the progress of apoptosis; and

determining the degree of apoptosis from the images by calculating a value based on the group consisting of occupied area per cell, circularity, fluorescent intensity, and absorbance per cell.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 4, 2012
From: YOON, TAE-HYUN; LEE, SONG-HEE; KWON, DONG-WOOK; PARK, JONG-HOON; YOO, HYUN-JU
To: INDUSTRY-UNIVERSITY CORPORATION FOUNDATION HANYANG UNIVERSITY
Reel/Frame 027476/0742 →
Priority Claims (3)
KR 10-2011-0005971 · Jan 20, 2011 · national
KP 10-2011-0019857 · Mar 7, 2011 · national
KR 10-2011-0043947 · May 11, 2011 · national
Continuity (1)
Related Publication 20120219985A1 · Aug 30, 2012