Berliner Boersenzeitung - Particle physics pushing cancer treatment boundaries

EUR -
AED 4.243603
AFN 75.680614
ALL 93.435737
AMD 423.112329
AOA 1060.75621
ARS 1732.118969
AUD 1.636952
AWG 2.079914
AZN 1.958749
BAM 1.960326
BBD 2.327073
BDT 143.024567
BHD 0.435697
BIF 3459.187047
BMD 1.155508
BND 1.480518
BOB 13.732063
BRL 5.903186
BSD 1.155368
BTN 109.941469
BWP 15.595008
BYN 3.440344
BYR 22647.956716
BZD 2.323635
CAD 1.610853
CDF 2611.447728
CHF 0.933883
CLF 0.026784
CLP 1057.407289
CNY 7.798581
CNH 7.792526
COP 3654.814015
CRC 525.224073
CUC 1.155508
CUP 30.620962
CVE 110.52354
CZK 24.260063
DJF 205.745052
DKK 7.475778
DOP 67.445728
DZD 153.610645
EGP 57.528581
ERN 17.33262
ETB 186.48005
FJD 2.554253
FKP 0.858821
GBP 0.856712
GEL 3.021621
GGP 0.858821
GHS 13.558658
GIP 0.858821
GMD 85.507793
GNF 10147.737864
GTQ 8.815354
GYD 241.718112
HKD 9.065451
HNL 30.967502
HRK 7.535417
HTG 151.068808
HUF 362.95604
IDR 20561.109276
ILS 3.46635
IMP 0.858821
INR 109.970331
IQD 1513.494564
IRR 1588650.168343
ISK 142.60075
JEP 0.858821
JMD 183.483652
JOD 0.81929
JPY 182.481304
KES 149.476942
KGS 101.049317
KHR 4692.835464
KMF 493.401928
KRW 1628.763599
KWD 0.356717
KYD 0.962823
KZT 541.490267
LAK 26085.892065
LBP 103461.84386
LKR 387.534794
LRD 208.545127
LSL 18.770139
LTL 3.411914
LVL 0.698955
LYD 7.349191
MAD 10.76839
MDL 20.09139
MGA 4930.319798
MKD 61.67427
MMK 2426.049949
MNT 4155.253063
MOP 9.336419
MRU 46.447652
MUR 54.38913
MVR 17.86473
MWK 2003.425785
MXN 19.809879
MYR 4.726256
MZN 73.847013
NAD 18.770139
NGN 1576.482821
NIO 42.517619
NOK 10.972802
NPR 175.906351
NZD 1.963747
OMR 0.444306
PAB 1.155353
PEN 3.912853
PGK 5.105944
PHP 70.259509
PKR 320.758912
PLN 4.298432
PYG 6870.070656
QAR 4.22358
RON 5.250745
RSD 117.339569
RUB 95.236935
RWF 1698.922706
SAR 4.338617
SBD 9.323041
SCR 16.746941
SDG 693.879389
SEK 10.95053
SGD 1.477612
SLE 28.426523
SOS 660.324648
SRD 43.755041
STD 23916.68255
STN 24.5567
SVC 10.109649
SZL 18.76633
THB 38.092505
TJS 10.658309
TMT 4.050056
TND 3.394237
TRY 55.121159
TTD 7.831251
TWD 37.273184
TZS 3059.20505
UAH 51.74765
UGX 4304.068193
USD 1.155508
UYU 46.508795
UZS 13818.3242
VES 871.49713
VND 30279.509274
VUV 137.517454
WST 3.152706
XAF 657.475069
XAG 0.018153
XAU 0.000266
XCD 3.122818
XCG 2.082308
XDR 0.818323
XOF 657.49503
XPF 119.331742
YER 273.682393
ZAR 18.68977
ZMK 10400.959762
ZMW 21.807068
ZWL 372.073103
  • RBGPF

    0.0000

    69.74

    0%

  • CMSD

    -0.1160

    21.864

    -0.53%

  • CMSC

    -0.0150

    21.705

    -0.07%

  • RYCEF

    0.0500

    21

    +0.24%

  • JRI

    0.1400

    12.8

    +1.09%

  • BCC

    2.2200

    86.48

    +2.57%

  • RIO

    1.9200

    101.57

    +1.89%

  • GSK

    0.7300

    52.9

    +1.38%

  • RELX

    0.1985

    35.67

    +0.56%

  • BCE

    -0.0200

    22.75

    -0.09%

  • NGG

    0.8000

    81.21

    +0.99%

  • BP

    -0.3750

    41.855

    -0.9%

  • VOD

    0.1850

    16.185

    +1.14%

  • BTI

    0.9200

    59.65

    +1.54%

  • AZN

    0.3800

    160.39

    +0.24%

Particle physics pushing cancer treatment boundaries
Particle physics pushing cancer treatment boundaries / Photo: Elodie LE MAOU - AFP

Particle physics pushing cancer treatment boundaries

Researchers at Europe's science lab CERN, who regularly use particle physics to challenge our understanding of the universe, are also applying their craft to upend the limits to cancer treatment.

Text size:

The physicists here are working with giant particle accelerators in search of ways to expand the reach of cancer radiation therapy, and take on hard-to-reach tumours that would otherwise have been fatal.

In one CERN lab, called CLEAR, facility coordinator Roberto Corsini stands next to a large, linear particle accelerator consisting of a 40-metre metal beam with tubes packed in aluminium foil at one end, and a vast array of measurement instruments and protruding colourful wires and cables.

The research here, he told AFP during a recent visit, is aimed at creating very high energy beams of electrons -- the negatively charged particles in the nucleus of an atom -- that eventually could help to combat cancerous cells more effectively.

They are researching a "technology to accelerate electrons to the energies that are needed to treat deep-seated tumours, which is above 100 million electron volts" (MeV), Corsini explained.

The idea is to use these very high energy electrons (VHEE) in combination with a new and promising treatment method called FLASH.

- Reducing 'collateral damage' -

This method entails delivering the radiation dose in a few hundred milliseconds, instead of minutes as is the current approach.

This has been shown to have the same destructive effect on the targeted tumour, but causes far less damage to the surrounding healthy tissue.

With traditional radiation therapy, "you do create some collateral damage," said Benjamin Fisch, a CERN knowledge transfer officer.

The effect of the brief but intense FLASH treatment, he told reporters, is to "reduce the toxicity to healthy tissue while still properly damaging cancer cells."

FLASH was first used on patients in 2018, based on currently available medical linear accelerators, linacs, that provide low-energy electron beams of around 6-10 MeV.

At such low energy though, the beams cannot penetrate deeply, meaning the highly-effective treatment has so far only been used on superficial tumours, found with skin cancer.

But the CERN physicists are now collaborating with the Lausanne University Hospital (CHUV) to build a machine for FLASH delivery that can accelerate electrons to 100 to 200 MeV, making it possible to use the method for much more hard-to-reach tumours.

- 'Game-changer' -

Deep-lying cancer tumours that can't be rooted out using surgery, chemotherapy or traditional radiation therapy are often today considered a death sentence.

"It is the ones which we don't cure at the moment which will be the targets," Professor Jean Bourhis, head of CHUV's radiology department, told AFP.

"For those particular cancers, which may be one third of the cancer cases, it could be a game-changer."

There are particular hopes that the FLASH method, with its far less harmful impact on surrounding tissue, could make it possible to go after tumours lodged in the brain or near other vital organs.

Bourhis said it might not relegate deaths from stubborn cancer tumours to the history books, "but at least there will be a new opportunity for more cures, if it works."

- 'Compact' -

One challenge is making the powerful accelerator compact enough to fit inside a hospital.

At CERN, a large gallery has been dedicated to housing the CLEAR accelerator, which requires 20 metres to push the electrons up to the required energy level -- and another 20 metres to condition, measure and deliver the beam.

But Corsini insisted that CERN had the know-how to "accelerate in a much more compact space".

The prototype being designed with CHUV will aim to do the same job with a machine that is 10 metres overall.

This "compact" solution, Corsini said, "reduces the cost, reduces power consumption and variability, and you can easily put it into a hospital without having to build a whole building."

Construction of the prototype is scheduled to begin next February, and patient clinical trials could begin in 2025, Bourhis said, "if everything goes smoothly".

(K.Müller--BBZ)