The Prague Post - Nobel winner's ingenious chemistry could lead to cancer breakthroughs

EUR -
AED 4.188346
AFN 72.397212
ALL 91.863029
AMD 414.753085
ANG 2.041582
AOA 1046.810584
ARS 1733.141772
AUD 1.621837
AWG 2.053424
AZN 1.945944
BAM 1.95503
BBD 2.294787
BDT 140.200338
BGN 1.919655
BHD 0.429499
BIF 3431.684419
BMD 1.140316
BND 1.455684
BOB 13.963054
BRL 5.906607
BSD 1.139296
BTN 109.104353
BWP 15.513756
BYN 3.442381
BYR 22350.19505
BZD 2.291488
CAD 1.613125
CDF 2634.129976
CHF 0.944404
CLF 0.02776
CLP 1096.140118
CNY 7.65306
CNH 7.665535
COP 3828.953313
CRC 518.016507
CUC 1.140316
CUP 27.343235
CVE 110.225955
CZK 24.344494
DJF 202.888132
DKK 7.475479
DOP 67.755999
DZD 152.488795
EGP 59.037548
ERN 17.104741
ETB 184.830529
FJD 2.562576
FKP 0.862937
GBP 0.860557
GEL 2.981875
GGP 0.862937
GHS 13.233312
GIP 0.862937
GMD 83.794715
GNF 10020.450527
GTQ 8.700918
GYD 238.385558
HKD 8.944491
HNL 30.580168
HRK 7.533498
HTG 149.107183
HUF 365.354419
IDR 20465.25258
ILS 3.459206
IMP 0.862937
INR 109.250776
IQD 1492.571297
IRR 1567449.967068
ISK 136.613062
JEP 0.862937
JMD 180.249039
JOD 0.808526
JPY 179.712102
KES 147.781491
KGS 99.718593
KHR 4633.358758
KMF 493.756659
KPW 1026.284829
KRW 1544.75229
KWD 0.351936
KYD 0.949418
KZT 504.673698
LAK 25555.947499
LBP 102028.459187
LKR 376.175204
LRD 195.970583
LSL 18.588815
LTL 3.367057
LVL 0.689766
LYD 7.284132
MAD 10.933427
MDL 20.222861
MGA 5030.218182
MKD 61.55118
MMK 2394.092104
MNT 4103.8065
MOP 9.204696
MRU 45.834358
MUR 54.199553
MVR 17.617848
MWK 1975.600197
MXN 20.182973
MYR 4.645673
MZN 72.877494
NAD 18.588815
NGN 1512.561427
NIO 41.925149
NOK 10.841931
NPR 174.567164
NZD 2.010976
OMR 0.438445
PAB 1.139296
PEN 3.86783
PGK 5.076202
PHP 71.275491
PKR 315.703181
PLN 4.371487
PYG 6715.621173
QAR 4.153029
RON 5.27362
RSD 117.392132
RUB 96.099733
RWF 1683.822337
SAR 4.275965
SBD 9.123112
SCR 15.729463
SDG 685.899716
SEK 11.29244
SGD 1.456332
SHP 0.860941
SLE 28.10932
SLL 23911.848655
SOS 651.169341
SRD 42.9842
STD 23602.240442
STN 24.491325
SVC 9.969469
SYP 14826.389884
SZL 18.584417
THB 38.023264
TJS 10.510477
TMT 4.002509
TND 3.372772
TOP 2.745607
TRY 55.833068
TTD 7.749255
TWD 36.216858
TZS 3016.166809
UAH 51.018828
UGX 4462.419309
USD 1.140316
UYU 45.642431
UZS 13483.809864
VES 972.041285
VND 29620.850338
VUV 135.134765
WST 3.153524
XAF 655.957
XAG 0.017582
XAU 0.000264913781
XCD 3.081761
XCG 2.053139
XDR 0.806263
XOF 655.957
XPF 119.331742
YER 269.855618
ZAR 18.581382
ZMK 10264.209889
ZMW 22.225127
ZWL 367.181311
SSP 6514.160368
MXV 2.287172
  • RYCEF

    0.0000

    19.67

    0%

  • BCC

    -0.1200

    75.98

    -0.16%

  • GSK

    -0.4950

    49.155

    -1.01%

  • RELX

    0.0300

    33.54

    +0.09%

  • NGG

    -0.3300

    74.9

    -0.44%

  • RIO

    -0.4900

    93.98

    -0.52%

  • BCE

    -0.1750

    21.125

    -0.83%

  • VOD

    0.0600

    16.55

    +0.36%

  • AZN

    0.6800

    165.24

    +0.41%

  • JRI

    -0.1500

    11.02

    -1.36%

  • CMSC

    -0.0800

    20.43

    -0.39%

  • RBGPF

    -1.0100

    65.99

    -1.53%

  • BP

    -0.0150

    44.395

    -0.03%

  • CMSD

    -0.0200

    20.35

    -0.1%

  • BTI

    -0.7050

    55.315

    -1.27%

Nobel winner's ingenious chemistry could lead to cancer breakthroughs
Nobel winner's ingenious chemistry could lead to cancer breakthroughs / Photo: Andrew Brodhead - Stanford News Service/AFP

Nobel winner's ingenious chemistry could lead to cancer breakthroughs

"All kinds of crazy things" is how Carolyn Bertozzi, a 2022 Nobel laureate, describes her life's work. Actually performing "chemistry in cells and in people."

Text size:

When she started her research in 1997, the Stanford professor was aiming only to observe the evolution of certain molecules on the surface of cancer cells.

Today, thanks to her discoveries, at least two companies -- including one she co-founded -- are developing innovative cancer treatments.

The multitude of applications made possible by her findings are impressive: delivering treatments with extreme precision, understanding better how drugs act inside the body, visualizing certain bacteria, to name a few.

"I can't even really enumerate them. The vast majority of those applications I would never have foreseen," she told AFP in an interview.

The Nobel Prize committee recognized Bertozzi's pioneering advances on Wednesday, making her only the eighth woman to win the chemistry prize, at just 55 years old.

- Lego pieces -

Her journey began when she found she had a passion for organic chemistry, while taking pre-medicine courses at Harvard.

The subject is notoriously -- many say fiendishly -- difficult, but she credits an "amazing professor," the late David Evans, for bringing it to life -- and changing the course of her life.

"I said, forget the med school thing. I'm going to be a chemist," said Bertozzi, whose sister is a professor of applied mathematics, and father a retired professor of physics.

After completing her post-doctorate and joining the faculty at UC Berkeley, she wanted to take a closer look at glycans: complex carbohydrates, or sugars, located on the surface of cells, which "go through structural changes" when they become cancerous.

At the time, "there was no tool to image sugars, like in a microscope, for example," she said.

She had an idea that would require two chemical substances that fit together perfectly, like pieces of lego.

The first lego is fed to cells via a sugar. The cell metabolizes it and places it on the tip of the glycan. The second piece of lego, a fluorescent molecule, is injected into the body.

The two lego pieces click together, and voila: hidden glycans reveal themselves under a microscope.

This technique is inspired by "click chemistry" developed independently by Denmark's Morten Meldal and American Barry Sharpless -- Bertozzi's co-winners. But their discoveries relied on using copper as a catalyst, which is toxic to the body.

One of Bertozzi's great leaps was achieving the same type of ultra-efficient reaction without copper.

The other tour de force: making it all happen without wreaking havoc with other processes in the body.

"The beauty of it is that you can take the two Legos and click them together, even if they're surrounded by millions of other very similar plastic toys," she explained.

She coined the term "bioorthogonal chemistry," meaning a reaction that doesn't interfere with other biochemical processes. Perfecting the technique took 10 years.

- 'Cycle of science' -

Researchers are now leveraging these breakthroughs to develop cancer treatments.

Glycans on cancer cells "are able to hide the cancer cell from the immune system -- and so your body can't fight it, it can't see it," she explains.

Using bioorthogonal chemistry, "we made a new type of medicine, which basically acts like a lawnmower," says Bertozzi.

The first lego attaches to the cancer cell's surface, and the second, which clips onto it, is equipped with an enzyme that "mows off the sugars as if they're just grass, it cuts the grass and the sugars fall off," she says with a smile.

The drug is currently being tested in the early stages of a clinical trial.

Another company is seeking to use bioorthogonal chemistry to better target cancer treatment. The first lego piece is injected into a tumor, then a second, which carries the drug, attaches itself and acts only on its target.

"So that allows the oncologist to treat the tumor and kill the tumor without exposing the person's entire body to a toxic chemical," she says.

"What the future holds is hopefully an impact in human health," says Bertozzi. "But the people who decide that more so than myself, are the students and postdocs that join my lab."

Hundreds of them, current and former, filled her email box with messages of congratulations this morning.

"That really is the cycle of science -- it's being mentored and then mentoring" she adds. And "mentoring students gives you an opportunity to amplify the impact of your science."

C.Novotny--TPP